WO2017126559A1 - Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme - Google Patents

Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme Download PDF

Info

Publication number
WO2017126559A1
WO2017126559A1 PCT/JP2017/001569 JP2017001569W WO2017126559A1 WO 2017126559 A1 WO2017126559 A1 WO 2017126559A1 JP 2017001569 W JP2017001569 W JP 2017001569W WO 2017126559 A1 WO2017126559 A1 WO 2017126559A1
Authority
WO
WIPO (PCT)
Prior art keywords
communication
ciot eps
eps optimization
message
identification information
Prior art date
Application number
PCT/JP2017/001569
Other languages
English (en)
Japanese (ja)
Inventor
雄大 河崎
真史 新本
Original Assignee
シャープ株式会社
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by シャープ株式会社 filed Critical シャープ株式会社
Priority to US16/070,766 priority Critical patent/US10567995B2/en
Priority to CN202110593791.3A priority patent/CN113225835B/zh
Priority to CN201780004272.0A priority patent/CN108432334B/zh
Priority to EP17741436.4A priority patent/EP3407669B1/fr
Publication of WO2017126559A1 publication Critical patent/WO2017126559A1/fr
Priority to US16/746,228 priority patent/US10993144B2/en

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/02Traffic management, e.g. flow control or congestion control
    • H04W28/06Optimizing the usage of the radio link, e.g. header compression, information sizing, discarding information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0011Control or signalling for completing the hand-off for data sessions of end-to-end connection
    • H04W36/0022Control or signalling for completing the hand-off for data sessions of end-to-end connection for transferring data sessions between adjacent core network technologies
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/11Allocation or use of connection identifiers
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/12Setup of transport tunnels
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/10Connection setup
    • H04W76/19Connection re-establishment
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/27Transitions between radio resource control [RRC] states
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/02Processing of mobility data, e.g. registration information at HLR [Home Location Register] or VLR [Visitor Location Register]; Transfer of mobility data, e.g. between HLR, VLR or external networks
    • H04W8/08Mobility data transfer
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/14Backbone network devices
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices

Definitions

  • the present invention relates to a terminal device and the like.
  • This application claims the benefit of priority to Japanese Patent Application No. 2016-7689 filed in Japan on January 19, 2016. By referring to it, the entire contents of this patent application are It is included in the application.
  • 3GPP The 3rd Generation Partnership Project
  • SAE System Architecture Enhancement
  • LTE Long Term Evolution
  • 3GPP has specified EPS (Evolved Packet System) as a communication system that realizes all-IP.
  • the core network that constitutes EPS is called EPC (Evolved-Packet-Core).
  • M2M Machine-to-Machine
  • M2M communication may be machine-machine type communication.
  • 3GPP is investigating CIoT (Cellular Internet of Things) as a technology to support IoT (Internet of Things) in 3GPP cellular networks.
  • CIoT Cellular Internet of Things
  • IoT refers to various IT devices such as personal computers and sensor devices including mobile phone terminals such as smartphones.
  • CIoT extracts technical issues for connecting these various terminal devices to cellular networks, and solutions Is specified.
  • CIoT optimization of communication procedures for terminals that require high power consumption efficiency, such as enabling batteries to be maintained for several years, compatibility with indoor and underground communication, and mass production at low cost It is required to provide connectivity for a large number of terminals produced.
  • CIoT is also required to support low data rate communication with simple end nodes.
  • terminals that are allowed to connect to the 3GPP core network are expressed as CIoT terminals.
  • CIoT is considering placing multiple functional units in the core network to increase the efficiency of control signals. Specifically, we are considering installing C-SGN (CIoT-Serving-Gateway-Node), which is responsible for conventional MME, SGW, and PGW functions, in the core network.
  • C-SGN CIoT-Serving-Gateway-Node
  • 3GPP is considering connecting CIoT terminals to the core network via the CIoT access network.
  • the core network to which the CIoT terminal is connected may be a conventional core network that accommodates mobile phone terminals such as smartphones, or a core network that accommodates logically divided CIoT terminals. It may be a core network that is physically different from the conventional core network.
  • connection method to these core networks and the data transmission / reception procedure are not clear.
  • the present invention has been made in view of such circumstances, and an object thereof is to provide a communication procedure for data transmission / reception suitable for a CIoT terminal.
  • the terminal device of the present invention executes communication using the first CIoT EPS Optimisation after the attach procedure is completed, and changes the communication method when the first control is performed.
  • a message is sent to the core network, and in response to the first control message, a second control message is received from the core network, and after receiving the second control message, a second CIoT EPS Optimisation
  • a transmission / reception unit and a control unit that execute communication using the communication unit, wherein the transmission / reception unit transmits an attach request message to the core network and receives an attach acceptance message from the core network in the attach procedure.
  • the attach completion message is transmitted to the core network, and the attach request message is transmitted to the first CIoT EPS Opt including terminal device capability information indicating support of imisation and information indicating requesting use of the first CIoT EPS Optimisation, and the attach acceptance message supports the first CIoT EPS Optimisation
  • the controller accepts the use of communication using the first CIoT EPS Optimisation by receiving the network capability information indicating that the first CIoT EPS Optimisation is supported.
  • the first control message includes information indicating that the use of the second CIoT EPSisationOptimisation is requested, and the second control message includes the second CIoT EPS Optimisation.
  • Use of communication using the second CIoTCEPS Optimisation by receiving the information indicating the second CIoT EPS Optimisation Recognize that an accepted, characterized in that.
  • the MME (Mobility Management Entity) of the present invention performs communication using the first CIoT EPS EPS Optimization after the attach procedure is completed, and when the first control message is received from the terminal device, As a response to the control message 1, a transmission / reception unit that transmits a second control message to the terminal device, and a control unit, the transmission / reception unit sends an attach request message to the terminal device in the attach procedure.
  • the attach acceptance message, 1 including network capability information indicating that the first CIoT EPS Optimisation is supported, and the network capability information indicating that the first CIoT EPS Optimisation is supported, the terminal device uses the first CIoT EPS Optimisation.
  • the first control message includes information indicating requesting the use of a second CIoT EPS Optimisation
  • the second control message is The information indicating the second CIoT EPS Optimization includes the information indicating the second CIoT EPS Optimization, and the information indicating the second CIoT EPS Optimization is recognized that the terminal device has accepted use of communication using the second CIoT EPS Optimization.
  • the communication using the second CIoT ⁇ EPS Optimisation is executed after transmitting the second control message.
  • the communication method of the terminal device of the present invention includes a step of executing communication using the first CIoT EPS Optimisation after the attach procedure is completed, and a first control message in the core when changing the communication method. Transmitting to the network and receiving a second control message from the core network as a response to the first control message; and after receiving the second control message, use a second CIoT EPS Optimisation Performing an attached communication, wherein in the attach procedure, an attach request message is sent to the core network, an attach accept message is received from the core network, and an attach complete message is sent to the core network. And the attach request message supports the first CIoT EPS Optimisation.
  • the MME (Mobility Management Entity) communication method of the present invention includes a step of executing communication using the first CIoT EPS EPS Optimization after the attach procedure is completed, and a case where the first control message is received from the terminal device. Transmitting a second control message to the terminal device as a response to the first control message, and receiving an attach request message from the terminal device in the attach procedure, and attaching An acceptance message is transmitted to the terminal device, an attach completion message is received from the terminal device, and the attach request message includes terminal device capability information indicating that the first CIoT EPS Optimisation is supported, and the first Information indicating that the use of CIoT EPS Optimisation of 1 is requested, and the attach acceptance message is the first Including network capability information indicating that CIoT ⁇ EPS Optimisation is supported, and the network capability information indicating that the first CIoT EPS Optimisation is supported is that the terminal device performs communication using the first CIoT EPS Optimisation.
  • the first control message includes information indicating requesting use of the second CIoT EPS Optimisation
  • the second control message includes the The information indicating the second CIoT EPSisationOptimisation includes the information indicating the second CIoT EPS Optimisation
  • the information indicating the second CIoT EPS Optimisation recognizes that the terminal device has accepted the use of the communication using the second CIoT EPS Optimisation.
  • communication using the second CIoT EPS Optimisation is executed.
  • a CIoT terminal can communicate by attaching and / or detaching to a core network that can provide a plurality of transmission methods including a user data transmission method optimized for the CIoT terminal.
  • FIG. 1 is a diagram for explaining an outline of a mobile communication system in the present embodiment.
  • the mobile communication system 1 includes mobile terminal apparatuses UE_A10, eNB_A45, a core network_A90, and PDN_A5.
  • UE_A10 may be a terminal device that can be wirelessly connected, and may be UE (User equipment), ME (Mobile equipment), or MS (Mobile equipment).
  • UE User equipment
  • ME Mobile equipment
  • MS Mobile equipment
  • the UE_A10 may be a CIoT terminal.
  • the CIoT terminal is an IoT terminal that can be connected to the core network A90, and the IoT terminal includes a mobile phone terminal such as a smartphone, and may be various IT devices such as a personal computer and a sensor device.
  • UE_A10 may request a connection optimized for CIoT terminals based on UE_A10 policies or network requests, or may request a conventional connection .
  • UE_A10 may be set as a terminal device that connects to core network_A90 only by a communication procedure optimized for CIoT terminals in advance at the time of shipment.
  • core network_A90 is an IP mobile communication network operated by a mobile operator.
  • the core network_A90 may be a core network for a mobile communication operator that operates and manages the mobile communication system 1, or a core for a virtual mobile communication operator such as MVNO (Mobile Virtual Network Operator). It can be a network.
  • the core network_A90 may be a core network for accommodating CIoT terminals.
  • ENB_A45 is a base station constituting a radio access network used for UE_A10 to connect to core network_A90. That is, UE_A10 connects to core network_A90 using eNB_A45.
  • core network_A90 is connected to PDN_A5.
  • PDN_A5 is a packet data service network that provides a communication service to UE_A10, and may be configured for each service.
  • a communication terminal is connected to the PDN, and UE_A10 can transmit and receive user data to and from the communication terminal arranged in PDN_A5.
  • the user data may be data transmitted and received between devices included in UE_A10 and PDN_A5.
  • UE_A10 transmits user data to PDN_A5 via core network_A90.
  • UE_A10 transmits / receives user data to / from core network_A90 in order to transmit / receive user data to / from PDN_A5.
  • UE_A10 transmits / receives user data to / from gateway devices in core network_A90 such as PGW_A30 and C-SGN_A95 in order to transmit / receive user data to / from PDN_A5.
  • FIG. 2 shows an example of the core network_90 configuration.
  • the core network_A90 in Figure 2 (a) is HSS (Home Subscriber Server) _A50, AAA (Authentication, Authorization, Accounting) _A55, PCRF (Policy and Charging Rules, Function) _A60, PGW (Packet (enhanced Packet Data Gateway) _A65, SGW (Serving ⁇ Gateway) _A35, MME (Mobility Management Entity) _A40, SGSN (Serving GPRS Support Node) _A42.
  • HSS Home Subscriber Server
  • AAA Authentication, Authorization, Accounting
  • PCRF Policy and Charging Rules, Function
  • PGW Packet (enhanced Packet Data Gateway) _A65
  • SGW Server ⁇ Gateway
  • MME Mobility Management Entity
  • SGSN Serving GPRS Support Node
  • the core network_A90 can be connected to a plurality of radio access networks (LTE AN_A80, WLAN ⁇ ANb75, WLAN ANa70, UTRAN_A20, GERAN_A25).
  • LTE AN_A80, WLAN ⁇ ANb75, WLAN ANa70, UTRAN_A20, GERAN_A25 radio access networks
  • the radio access network may be configured to be connected to a plurality of different access networks, or may be configured to be connected to any one access network. Furthermore, UE_A 10 can wirelessly connect to the radio access network.
  • the access networks that can be connected by the WLAN access system are WLAN access network b (WLAN ANb75) connected to the core network via ePDG_A65, and WLAN access network a (WLAN ANa75) connected to PGW_A, PCRF_A60, and AAA_A55. Is configurable.
  • each device is configured in the same manner as a conventional device in a mobile communication system using EPS, detailed description is omitted. Hereinafter, each device will be briefly described.
  • PGW_A30 is connected to PDN_A5, SGW_A35, ePDG_A65, WLAN ANa70, PCRF_A60 and AAA_A55, and is a relay device that transfers user data as a gateway device for PDN_A5 and core network_A90.
  • SGW_A35 is connected to PGW30, MME_A40, LTE AN80, SGSN_A42 and UTRAN_A20, and relay device that transfers user data as a gateway device between core network_A90 and 3GPP access network (UTRAN_A20, GERAN_A25, LTE AN_A80) It is.
  • MME_A40 is connected to SGW_A35, LTE AN80, and HSS_A50, and is an access control device that performs location information management and access control of UE_A10 via LTE AN80.
  • the core network_A90 may be configured to include a plurality of location management devices. For example, a location management device different from MME_A40 may be configured. A location management device different from MME_A40 may be connected to SGW_A35, LTE AN80, and HSS_A50 in the same manner as MME_A40.
  • the MMEs may be connected to each other. Thereby, transmission / reception of the context of UE_A10 may be performed between MMEs.
  • HSS_A50 is connected to MME_A40 and AAA_A55, and is a management node that manages subscriber information.
  • the subscriber information of HSS_A50 is referred to at the time of access control of MME_A40, for example. Further, the HSS_A50 may be connected to a location management device different from the MME_A40.
  • AAA_A55 is connected to PGW30, HSS_A50, PCRF_A60, and WLAN ANa70, and performs access control for UE_A10 connected via WLAN ANa70.
  • PCRF_A60 is connected to PGW_A30, WLAN ANA75, AAA_A55, and PDN_A5, and performs QoS management for data delivery. For example, the QoS of the communication path between UE_A10 and PDN_A5 is managed.
  • EPDG_A65 is connected to PGW30 and WLANWANb75, and delivers user data as a gateway device between core network_A90 and WLAN ANb75.
  • SGSN_A42 is connected to UTRAN_A20, GERAN_A25 and SGW_A35 and is a control device for location management between 3G / 2G access network (UTRAN / GERAN) and LTE access network (E-UTRAN). Furthermore, SGSN_A42 has a PGW and SGW selection function, a UE time zone management function, and an MME selection function at the time of handover to E-UTRAN.
  • each radio access network includes devices (for example, base station devices and access point devices) to which UE_A 10 is actually connected.
  • devices for example, base station devices and access point devices
  • a device used for connection a device adapted to a radio access network can be considered.
  • LTE-AN80 is configured to include eNB_A45.
  • eNB_A45 is a radio base station to which UE_A10 is connected in the LTE access system
  • LTE-AN_A80 may be configured to include one or a plurality of radio base stations.
  • WLAN AAN70 is configured to include WLAN APa72 and TWAG_A74.
  • WLAN APa72 is a wireless base station to which UE_A10 connects with a WLAN access system that is reliable to the operator operating the core network_A90
  • WLAN ANa70 is configured to include one or more wireless base stations You can.
  • TWAG_A74 is a gateway device between the core network_A90 and the WLAN AAN70. Further, the WLAN APA 72 and the TWAG_A 74 may be configured by a single device.
  • WLAN ANb75 includes WLAN ⁇ ⁇ APb76.
  • WLAN APb76 is a wireless base station to which UE_A10 is connected in the WLAN access system when a trust relationship is not established with the operator operating the core network_A90, and WLAN ⁇ ⁇ ANb75 has one or more wireless base stations May be included.
  • WLAN ANb75 is connected to core network_A90 using ePDG_A65, which is a device included in core network_A90, as a gateway.
  • ePDG_A65 has a security function to ensure safety.
  • UTRAN_A20 includes RNC (Radio Network Controller) _A24 and eNB (UTRAN) _A22.
  • eNB (UTRAN) _A22 is a radio base station to which UE_A 10 is connected by UTRA (UMTS Terrestrial Radio Access), and UTRAN_A20 may be configured to include one or a plurality of radio base stations.
  • the RNC_A24 is a control unit that connects the core network_A90 and the eNB (UTRAN) _A22, and the UTRAN_A20 may be configured to include one or a plurality of RNCs.
  • the RNC_A24 may be connected to one or more eNB (UTRAN) _A22.
  • the RNC_A24 may be connected to a radio base station (BSS (Base Station Subsystem) _A26) included in the GERAN_A25.
  • BSS Base Station Subsystem
  • GERAN_A25 includes BSS_A26.
  • BSS_A26 is a radio base station to which UE_A10 is connected by GERA (GSM (registered trademark) / EDGE radio access), and GERAN_A25 may be configured by one or a plurality of radio base stations BSS. A plurality of BSSs may be connected to each other. BSS_A26 may be connected to RNC_A24.
  • the core network_A90 may have the configuration shown in FIG.
  • the core network_A90 in FIG. 3 is composed of C-SGN (CIoT Serving Gateway Node) _A95 and HSS_A50.
  • the core network_A90 includes AAA_A55 and / or PCRF_A60 and / or ePDG_A65 and / or SGSN_A42 in the core network_A90 to provide connectivity with access networks other than LTE. May be.
  • C-SGN_A95 may be a node that bears some or all of the functions of MME_A40, SGW_A35, and PGW_A30 in FIG.
  • C-SGN_A95 may be a node that manages establishment and disconnection of CIoT terminal connectivity, mobility, and the like.
  • C-SGN_A95 may have a gateway device function between PDN_A and core network_A90, a gateway device function between core network_A90 and CIOTAN_A100, and a location management function of UE_A10.
  • UE_A10 is connected to the core network_A90 via the radio access network CIOT AN_A100.
  • Fig. 3 (b) shows the configuration of CIOT AN_A100.
  • CIOT AN_A100 may be configured to include eNB_A45.
  • ENB_A45 included in CIOT AN_A100 may be the same base station as eNB_A45 included in LTE AN_A80.
  • AN_A100 may be a base station which accommodates a CIoT terminal different from eNB_A45 contained in LTE
  • first core network and / or the second core network may be configured by a system optimized for IoT.
  • UE_A10 being connected to each radio access network means being connected to a base station device, an access point, etc. included in each radio access network. Also via a base station device or access point.
  • FIG. 4 shows a device configuration of eNB_A45.
  • the eNB_A45 includes a network connection unit_A420, a transmission / reception unit_A430, a control unit_A400, and a storage unit_A440.
  • the network connection unit_A420, the transmission / reception unit_A430, and the storage unit_A440 are connected to the control unit_A400 via a bus.
  • Control unit_A400 is a functional unit for controlling eNB_A45.
  • the control unit_A400 implements various processes by reading and executing various programs stored in the storage unit_A440.
  • the network connection unit_A420 is a functional unit for the eNB_A45 to connect with the MME_A40 and / or SGW_A35 or C-SGN_A95. Furthermore, the network connection unit_A420 is a transmission / reception function unit in which the eNB_A45 transmits / receives user data and / or control data from the MME_A40 and / or SGW_A35 or C-SGN_A95.
  • the transmission / reception unit_A430 is a functional unit for the eNB_A45 to connect to the UE_A10. Further, the transmission / reception unit_A430 is a transmission / reception function unit that transmits / receives user data and / or control data from the UE_A10. In addition, an external antenna _A410 is connected to the transmission / reception unit _A430.
  • Storage unit_A440 is a functional unit that stores programs and data necessary for each operation of eNB_A45.
  • the storage unit 640 includes, for example, a semiconductor memory, an HDD (Hard Disk Drive), or the like.
  • the storage unit_A440 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received in a communication procedure described later.
  • FIG. 6 (a) shows the device configuration of MME_A40.
  • the MME_A 40 includes a network connection unit_B620, a control unit_B600, and a storage unit_B640.
  • the network connection unit_B620 and the storage unit_B640 are connected to the control unit_B600 via a bus.
  • Control unit_B600 is a functional unit for controlling MME_A40.
  • the control unit_B600 implements various processes by reading and executing various programs stored in the storage unit_B640.
  • the network connection unit_B620 is a functional unit for the MME_A40 to connect with the eNB_A45 and / or HSS_A50 and / or SGW_A35. Furthermore, the network connection unit_B620 is a transmission / reception function unit in which the MME_A40 transmits / receives user data and / or control data from the eNB_A45 and / or HSS_A50 and / or SGW_A35.
  • Storage unit_B640 is a functional unit that stores programs and data necessary for each operation of MME_A40.
  • the storage unit_B640 is configured by, for example, a semiconductor memory, an HDD (Hard Disk Drive), or the like.
  • the storage unit_B640 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received in a communication procedure described later.
  • the storage unit_B640 stores an MME context 642, a security context 648, and MME emergency configuration data 650, as shown in the figure.
  • the MME context includes an MM context 644 and an EPS bearer context 646.
  • the MME context may be composed of an EMM context and an ESM context.
  • the MM context 644 may be an EMM context
  • the EPS bearer context 646 may be an ESM context.
  • Fig. 7 (b), Fig. 8 (b) and Fig. 9 (b) show information elements of MME context stored for each UE.
  • the MME context stored for each UE is IMSI, IMSI-unauthenticated-indicator, MSISDN, MM State, GUTI, ME Identity, Tracking Area List, TAI of last TAU, ECGI (E-UTRAN Cell Global Identity), E-UTRAN Cell Identity Identity, CSG ID, CSG membership, Access mode, Authentication Vector, UE Radio Access Capability, MS Classmark 2, MS Classmark 3, Supported Codecs, UE Network Capability, MS Network Capability, UE Specific DRX Parameters , Selected NAS Algorithm, eKSI, K_ASME, NAS Keys and COUNT, Selected CN operator ID, Recovery, Access Restriction, ODB for PS parameters, APN-OI Replacement, MME IP address for S11, MME TEID for S11, S-GW for S11 / S4,
  • IMSI is the user's permanent identification information. Same as IMSI stored in HSS_A50.
  • IMSI-unauthenticated-indicator is instruction information indicating that this IMSI is not authenticated.
  • MSISDN represents the phone number of the UE. MSISDN is indicated by the storage part of HSS_A50.
  • MM State indicates the MME mobility management state.
  • This management information includes the ECM-IDLE state in which the connection between the eNB and the core network is released, the ECM-CONNECTED state in which the connection between the eNB and the core network is not released, or the MME stores the location information of the UE. No EMM-DEREGISTERED state.
  • GUTI Globally Unique Unique Temporary Identity
  • MME identification information GUMMEI: GloballyGlobalUnique MME Identifier
  • M-TMSI UE identification information
  • the ID of ME IdentityUE for example, IMEI / IMISV.
  • Tracking Area List is a list of tracking area identification information assigned to the UE.
  • TAI of last TAU is tracking area identification information indicated in the latest tracking area update procedure.
  • ECGI is the latest UE cell identification information known to MME_A40.
  • E-UTRAN Cell Identity Age indicates the elapsed time since the MME acquired ECGI.
  • the CSG ID is identification information of a CSG (Closed Subscriber Group) operated by a recent UE as known by the MME.
  • CSG membership is the latest UE CSG member information known to MME.
  • CSG membership indicates whether the UE is a CSG member.
  • Access mode is an access mode of a cell identified by ECGI, and may be identification information indicating that ECGI is a hybrid that allows access to both CSG and non-CSG UEs.
  • Authentication Vector indicates a temporary AKA (Authentication and Key Agreement) of a specific UE that the MME follows.
  • the Authentication Vector is composed of a random value RAND used for authentication, an expected response XRES, a key K_ASME, and a language (token) AUTN authenticated by the network.
  • Radio Access Capability is identification information indicating the radio access capability of the UE.
  • MS Classmark 2 is a 3G / 2G (UTRAN / GERAN) CS domain core network classmark. MS Classmark 2 is used when the UE supports SRVCC (Single Radio Voice Call Continuit) for GERAN or UTRAN.
  • SRVCC Single Radio Voice Call Continuit
  • MS Classmark 3 is the class mark of the GERAN CS domain wireless network. MS Classmark 3 is used when the UE supports SRVCC (Single Radio Voice Call Continuit) for GERAN.
  • SRVCC Single Radio Voice Call Continuit
  • SupportedcsCodecs is a list of codes supported by CS domain. This list is used when the UE supports SRVCC for GERAN or UTRAN.
  • UE Network Capability includes security algorithms and key derivation functions supported by the UE.
  • MS Network Capability is information including at least one piece of information necessary for SGSN for UE having GERAN and / or UTRAN functions.
  • UE Specific DRX Parameters are parameters used to determine the UE DRX (Discontinuous Reception) cycle length.
  • DRX is a function for switching the UE to a low power consumption state when there is no communication for a certain period of time in order to reduce the power consumption of the battery of the UE as much as possible.
  • “Selected NAS Algorithm” is a selected security algorithm of NAS (Non-Access Stream).
  • EKSI is a set of keys indicating K_ASME. Whether or not to use a security key acquired by UTRAN or E-UTRAN security authentication may be indicated.
  • K_ASME is an E-UTRAN key hierarchy key generated based on the encryption key CK (Cipher Key) and the complete key IK (Integrity Key).
  • NAS Keys and COUNT consists of key K_NASint, key K_NASenc and NAS COUNT parameter.
  • Key K_NASint is a key for encryption between UE and MME
  • key K_NASenc is a key for security protection between UE and MME.
  • NAS COUNT is a count that starts counting when a new key is set when security between the UE and the MME is established.
  • the “selected CN” operator ID is identification information of the selected core network operator used for sharing the network among operators.
  • Recovery is identification information indicating whether the HSS performs database restoration.
  • Access Restriction is registration information for access restriction.
  • ODB for PS parameters indicate the state of ODB (operator determined)
  • ODB is an access rule determined by a telecommunications carrier (operator).
  • APN-OI Replacement is a domain name that replaces APN when constructing a PGW FQDN to perform DNS resolution. This alternate domain name applies to all APNs.
  • MME IP address for S11 is the IP address of MME used for the interface with SGW.
  • MME TEID for S11 is a TEID (Tunnel Endpoint Identifier) used in the interface with SGW.
  • S-GW IP address for S11 / S4 is the IP address of SGW used at the interface between MME and SGW or between SGSN and MME.
  • S GW TEID for S11 / S4 is the TEID of SGW used at the interface between MME and SGW or between SGSN and MME.
  • SGSN IP address for S3 is the IP address of SGSN used for the interface between MME and SGSN.
  • SGSN TEID for S3 is the SGSN TEID used in the interface between MME and SGSN.
  • EnodeB Address in “Use” for “S1-MME” is the IP address of eNB that was recently used in the interface between MME and eNB.
  • ENB UE S1AP ID is identification information of UE within eNB.
  • MME UE S1AP ID is identification information of UE in MME.
  • Subscribed UE-AMBR indicates the maximum value of MBR (Maximum Bit Rate) for uplink and downlink communication for sharing all Non-GBR (Guaranteed Bit Rate) bearers (non-guaranteed bearers) according to user registration information.
  • MBR Maximum Bit Rate
  • Non-GBR Guard Bit Rate
  • UE-AMBR indicates the maximum value of MBR of uplink communication and downlink communication recently used to share all Non-GBR bearers (non-guaranteed bearers).
  • EPS Subscribed Charging Characteristics indicates the charging characteristics of the UE.
  • EPS Subscribed Charging Characteristics may indicate registration information such as normal, prepaid, fixed charge rate, or immediate billing.
  • Subscribed RFSP Index is an index for a specific RRM configuration in E-UTRAN obtained from HSS.
  • RFSP Index In Use is an index for a specific RRM configuration in E-UTRAN that has been used recently.
  • Trace reference is identification information for identifying a specific trace record or a set of records.
  • Trace type indicates the type of trace. For example, the type that HSS traces and / or the type that MME, SGW, or PGW traces may be indicated.
  • Trigger ID is identification information that identifies the component that starts the trace.
  • OMCM Identity is identification information that identifies the OMC that received the traced record.
  • URRP-MME is identification information indicating that the UE activity notification from the MME is requested by the HSS.
  • CSG Subscription Data is a related list of roaming destination PLMN (VPLMN) CSG ID and roaming destination equivalent PLMN.
  • Each CSG ID may be associated with an expiration date indicating the expiration date of the CSG ID or an absent date indicating that there is no expiration date.
  • the CSG ID may be used for a specific PDN connection via LIPA.
  • Subscribed Periodic RAU / TAU Timer is a regular RAU and / or TAU timer.
  • MPS CS priority indicates that the UE is registered with eMLPP or 1x RTT priority service in the CS domain.
  • MPS EPS priority is identification information indicating that it is registered in the MPS within the EPS domain.
  • Voice Support Match Indicator indicates whether the UE's radio capabilities are compatible with the network configuration. For example, it indicates whether the SRVCC support by the UE matches the support for network voice calls.
  • Homogenous Support of IMS Voice over PS Sessions for MME is instruction information indicating for each UE whether to support IMS voice calls over PS sessions.
  • Homogenous Support of IMS Voice over PS Sessions for MME supports IMS (IP Multimedia Subsystem) voice calls on PS (Packet Switched) sessions on all TAs (Tracking Area) managed by MME. ”And“ Not Supported ”indicating that there is no TA supporting IMS voice call on the PS session.
  • IMS IP Multimedia Subsystem
  • PS Packet Switched
  • TAs Track Area
  • the MME notifies the HSS of this instruction information. do not do.
  • Fig. 10 (c) shows the information elements included in the MME context for each PDN connection stored for each PDN connection.
  • the MME context for each PDN connection is APN Use, APN Restriction, APN Subscribed, PDN Type, IP Address, EPS PDN Charging Characteristics, APN-OI Replacement, SIPTO permissions, Local Home Network ID, LIPApermissions , WLAN-offloadability, VPLMN-Address-Allowed, PDN-GW-Address-in-Use (control information), PDN-GW-TEID-for S5 / S8 (control information), MS-Info-Change-Reporting Action, CSG-Information-Reporting-Action, Presence-Reporting-Area-Action, EPS-subscribed-QoS-profile , Subscribe APN-AMBR, APN-AMBR, PDN GW GRE Key for uplink traffic (user data), Default bearer, low access priority.
  • APN in ⁇ Use indicates the recently used APN.
  • This APN is composed of APN network identification information and default operator identification information.
  • APN Restriction indicates the restriction of the combination of APN types for the APN associated with this bearer context. That is, it is information that limits the number of APNs that can be established and the type of APN.
  • APINscribedSubscribed means registered APN received from HSS.
  • PDN Type indicates the IP address type.
  • the PDN type indicates IPv4, IPv6 or IPv4v6.
  • IP Address indicates an IPv4 address or IPv6 Prefix.
  • the IP address may store both IPv4 and IPv6 prefixes.
  • EPS PDN Charging Characteristics indicates billing characteristics. EPS PDN Charging Characteristics may indicate, for example, normal, prepaid, fixed charge rate, or instant billing.
  • APN-OI Replacement is a proxy domain name of APN that has the same role as APN-OI Replacement registered for each UE. However, the priority is higher than APN-OI Replacement for each UE.
  • SIPTO permission indicates permission information for SIPTO (Selected IP Traffic Offload) of traffic using this APN. Specifically, SIPTO permissions prohibits the use of SIPTO, permits the use of SIPTO outside of the local network, permits the use of SIPTO in networks that include the local network, or allows only the local network to use SIPTO. Identify that you are allowed to use
  • Local Home Network ID indicates identification information of the home network to which the base station belongs when SIPTO (SIPTO @ LN) using the local network is available.
  • LIPA permissions is identification information indicating whether this PDN can be accessed via LIPA.
  • the LIPA-permissions may be LIPA-prohibited that does not allow LIPA, or LIPA-only that allows LIPA only, or LIPA-conditional that permits LIPA by condition.
  • WLAN offloadability is identification information indicating whether traffic connected by this APN can be offloaded to a wireless run using a link function between the wireless run and 3GPP, or whether a 3GPP connection is maintained.
  • WLAN load ability may be divided for each RAT type. Specifically, different WLAN offload ability may exist between LTE (E-UTRA) and 3G (UTRA).
  • VPLMN Address Allowed indicates that the UE is allowed to use only the HPLMN domain (IP address) PGW in the roaming PLMN (VPLMN), or the PGW in the VPLMN domain is connected using this APN.
  • IP address IP address
  • PGW gateway
  • Address Address
  • Use control information
  • PDN GW TEID for S5 / S8 (control information) is a TEID used for transmission / reception of control information at the interface (S5 / S8) between SGW and PGW.
  • MS Info Change Reporting Action is an information element indicating that it is necessary to notify the PGW that the user location information has been changed.
  • CSG Information Reporting Action is an information element indicating that it is necessary to notify the PGW that the CSG information has been changed.
  • Presence Reporting Area Action indicates that it is necessary to notify the change of whether or not the UE exists in the presence reporting area (Presence Reporting Area).
  • This information element is divided into identification information of the presence report area and elements included in the presence report area.
  • the EPS “subscribed” QoS profile shows the QoS parameters at the bearer level for the default bearer.
  • Subscribed APN-AMBR is the maximum value of MBR (Maximum Bit Rate) for uplink and downlink communication for sharing all Non-GBR bearers (non-guaranteed bearers) established for this APN according to user registration information Indicates.
  • MBR Maximum Bit Rate
  • APN-AMBR is the maximum value of MBR (Maximum Bit Rate) for uplink and downlink for sharing all Non-GBR bearers (non-guaranteed bearers) established for this APN, determined by PGW Indicates.
  • PDN-GW-GRE-Key-for-link-traffic (user data) is a GRE (Generic Routing Encapsulation) key for uplink communication of user data at the interface between SGW and PGW.
  • GRE Generic Routing Encapsulation
  • Default Bearer is information acquired and / or generated when a PDN connection is established, and is EPS bearer identification information for identifying a default bearer associated with a PDN connection.
  • the EPS bearer in this embodiment may be a communication path established between UE_A10 and C-SGN_A95.
  • the EPS bearer may be configured by an RB (Radio Bearer) established between UE_A10 and eNB_A45 and an S1 bearer established between eNB_A45 and C-SGN_A95.
  • the RB and the EPS bearer may be associated one to one. Therefore, the RB identification information may be associated with the EPS bearer identification information on a one-to-one basis, or may be the same identification information.
  • the EPS bearer may be a logical communication path established between UE_A10 and PGW_A30. Even in this case, the EPS bearer may be configured to include an RB (Radio Bearer) established between UE_A10 and eNB_A45. Furthermore, the RB and the EPS bearer may be associated with each other one to one. Therefore, the RB identification information may be associated with the EPS bearer identification information on a one-to-one basis, or may be the same identification information.
  • RB Radio Bearer
  • Default Bearer may be identification information for identifying SRB (Signalling Radio Bearer) and / or CRB (Control Signalling Radio Bearer), or may be identification information for identifying DRB (Data Radio Bearer). Good.
  • the SRB in the present embodiment may be an RB that is originally established for transmitting / receiving control information such as a control message.
  • the CRB in the present embodiment may be an RB that is originally established for transmitting / receiving control information such as a control message.
  • user data is transmitted / received using an RB originally for transmitting / receiving a control message. Therefore, in the present embodiment, control messages and user data are transmitted and received using SRB or CRB.
  • the DRB in the present embodiment may be an RB established for transmitting / receiving user data.
  • Low access priority indicates that the UE requested a low access priority (low access priority) when the PDN connection is open.
  • Fig. 11 (d) shows the MME context stored for each bearer.
  • the MME context stored for each bearer is EPS Bearer ID, TI, S-GW IP address for S1-u, S-GW TEID for S1u, PDN GW TEID for S5 / S8, PDN GW IP Include address for S5 / S8, EPS bearer QoS, TFT.
  • EPS Bearer ID is the only identification information that identifies EPS bearer for UE connection via E-UTRAN.
  • the EPS Bearer ID may be EPS bearer identification information for identifying a dedicated bearer. Therefore, it may be identification information for identifying an EPS bearer different from the default bearer.
  • the EPS bearer may be a communication path established between UE_A10 and C-SGN_A95. Further, the EPS bearer may be configured by an RB (Radio Bearer) established between UE_A10 and eNB_A45 and an S1 bearer established between eNB_A45 and C-SGN_A95.
  • the RB and the EPS bearer may be associated one to one. Therefore, the RB identification information may be associated with the EPS bearer identification information on a one-to-one basis, or may be the same identification information.
  • the EPS bearer may be a logical communication path established between UE_A10 and PGW_A30. Even in this case, the EPS bearer may be configured to include an RB (Radio Bearer) established between UE_A10 and eNB_A45. Furthermore, the RB and the EPS bearer may be associated with each other one to one. Therefore, the RB identification information may be associated with the EPS bearer identification information on a one-to-one basis, or may be the same identification information.
  • RB Radio Bearer
  • the EPS bearer ID that identifies the dedicated bearer may be identification information that identifies SRB (Signalling Radio Bearer) and / or CRB (Control Signalling Radio Bearer), or DRB (Data Radio Bearer)
  • the identification information to identify may be sufficient.
  • the SRB in the present embodiment may be an RB that is originally established to transmit / receive control information such as a control message.
  • the CRB in the present embodiment may be an RB that is originally established for transmitting / receiving control information such as a control message.
  • user data is transmitted / received using an RB originally for transmitting / receiving a control message. Therefore, in the present embodiment, control messages and user data are transmitted and received using SRB or CRB.
  • the DRB in the present embodiment may be an RB established for transmitting / receiving user data.
  • TI is an abbreviation for Transaction Identifier, and is identification information that identifies a bidirectional message flow (Transaction).
  • S-GW IP address for S1-u is the IP address of SGW used at the interface between eNB and SGW.
  • S-GW IP address for S1-u is the IP address of the SGW used at the interface between the MME and / or SGSN and SGW when user data is included in the control information message and transmitted / received. It may be S-GW IP address for S11 / S4.
  • S-GW TEID for S1u is the SGW TEID used at the interface between eNB and SGW.
  • S-GW TEID for S1u is MTE and / or SGW TEID address used at the interface between SGSN and SGW when user data is included in the control information message and transmitted / received. It may be S-GW TEID for S11 / S4.
  • PDN GW TEID for S5 / S8 is PGW TEID for user data transmission of the interface between SGW and PGW.
  • PDN “GW IP address” for “S5 / S8” is the IP address of PGW for user data transmission of the interface between SGW and PGW.
  • EPS bearer QoS consists of QCI (QoS Class Identifier) and ARP (Allocation and Retention Priority).
  • QCI indicates the class to which QoS belongs.
  • QoS can be divided into classes according to the presence / absence of bandwidth control, allowable delay time, and packet loss rate.
  • QCI includes information indicating priority.
  • ARP is information indicating the priority related to maintaining a bearer.
  • TFT Traffic Flow Template
  • the information elements included in the MME context shown in FIGS. 7 to 11 are included in either the MM context 644 or the EPS bearer context 646.
  • the MME context for each bearer shown in FIG. 11 (d) may be stored in the EPS bearer context, and other information elements may be stored in the MM context.
  • the MME context for each PDN connection shown in FIG. 10 (c) and the MME context for each bearer shown in FIG. 11 (d) may be stored in the EPS bearer context, and other information elements may be stored in the MM context.
  • the MME storage unit_B640 may store a security context 648.
  • FIG. 12 (e) shows information elements included in the security context 648.
  • FIG. 12 (e) shows information elements included in the security context 648.
  • the security context consists of EPS AS security context and EPS NAS security context.
  • the EPS AS security context is a context related to the security of the access layer (AS: Access Stream)
  • the EPS NAS security context is a context related to the security of the non-access layer (NAS: Non-Access Stream).
  • Fig. 12 (f) shows the information elements included in the EPS AS security context.
  • the EPS AS security context includes a cryptographic key, Next Hop parameter (NH), Next Hop Chaining Counter parameter (NCC), and identifiers of the selected AS level cryptographic algorithms.
  • Cryptographic key is an encryption key in the access layer.
  • NH is an information element determined from K_ASME. It is an information element for realizing forward security.
  • NCC is an information element associated with NH. This represents the number of vertical handovers that switch networks.
  • Figure 12 (g) shows the information elements included in the EPS NAS security context.
  • the EPS-NAS-security context may include K_ASME, UE-security-capabilitie, and NAS-COUNT.
  • K_ASME is an E-UTRAN key hierarchy key generated based on keys CK and IK.
  • UE Security Capabilitie is a set of identification information corresponding to the ciphers and algorithms used in the UE. This information includes information for the access layer and information for the non-access layer. Furthermore, if the UE supports access to UTRAN / GERAN, this information includes information for UTRAN / GERAN.
  • NAS COUN is a counter that indicates the time during which K_ASME is operating.
  • the security context 648 may be included in the MME context 642. Further, as shown in FIG. 6 (a), the security context 648 and the MME context 642 may exist separately.
  • FIG. 12 (h) shows information elements stored in the MME emergency configuration data 650.
  • the MME emergency configuration data is information used instead of the UE registration information acquired from the HSS.
  • the MME emergency configuration data 650 includes em APN (Emergency Access Point Name), Emergency QoS profile, Emergency APN-AMBR, Emergency PDN GW identity, Non-3GPP HO Emergency PDN GW identity.
  • [Em APN indicates the name of the access point used for emergency PDN connection.
  • Emergency QoS profile indicates the QoS of the default bearer of em N APN at the bearer level.
  • Emergency APN-AMBR indicates the maximum value of MBR for uplink and downlink communication for sharing non-GBR bearer (non-guaranteed bearer) established for em APN. This value is determined by PGW.
  • Emergency PDN GW identity is PGW identification information statically set for em APN. This identification information may be an FQDN or an IP address.
  • Non-3GPP HO Emergency PDN GW identity is PGW identification information that is statically set for em APN when the PLMN supports handover to an access network other than 3GPP.
  • This identification information may be an FQDN or an IP address.
  • the MME_A 40 may manage the connection state for the UE while synchronizing with the UE.
  • FIG. 13 (a) shows the device configuration of SGW_A35.
  • the SGW_A35 includes a network connection unit_C1320, a control unit_C1300, and a storage unit_C1340.
  • the network connection unit _C1320 and the storage unit _C1340 are connected to the control unit _C1300 via a bus.
  • Control unit_C1300 is a functional unit for controlling SGW_A35.
  • the control unit_C1300 implements various processes by reading and executing various programs stored in the storage unit_C1340.
  • the network connection unit_C1320 is a functional unit for the SGW_A35 to connect to the eNB_A45 and / or MME_A40 and / or PGW_A30 and / or SGSN_A42. Further, the network connection unit_C1320 is a transmission / reception function unit in which the SGW_A35 transmits / receives user data and / or control data from the eNB_A45 and / or MME_A40 and / or PGW_A30 and / or SGSN_A42.
  • Storage unit_C1340 is a functional unit that stores programs and data necessary for each operation of SGW_A35.
  • the storage unit_C1340 includes, for example, a semiconductor memory, an HDD (Hard Disk Disk Drive), or the like.
  • the storage unit_C1340 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received in a communication procedure described later.
  • Storage unit_C1340 stores EPS bearer context 1342 as shown in the figure.
  • the EPS bearer context includes one stored for each UE, one stored for each PDN, and one stored for each bearer.
  • Fig. 14 (b) shows the information elements of EPS bearer context stored for each UE.
  • the EPS bearer context stored for each UE is IMSI, MSI-unauthenticated-indicator, ME Identity, MSISDN, Selected CN CN operator id, MME TEID for S11, MME IP address for S11, S-GW TEID for S11 / S4, S-GW IP address for S11 / S4, SGSN IP address for S4, SGSN TEID for S4, Trace reference, Trace type, Trigger ID, OMC identity, Last known Cell Id, Last known Cell Include Id age.
  • IMSI is the user's permanent identification information. Equivalent to IMSI of HSS_A50.
  • IMSI-unauthenticated-indicator is instruction information indicating that this IMSI is not authenticated.
  • ME Identity is UE identification information, and may be, for example, IMEI / IMISV.
  • MSISDN represents the basic phone number of the UE. MSISDN is indicated by the storage part of HSS_A50.
  • Selected CN operator “id” is identification information of the selected core network operator used for sharing the network among operators.
  • MME TEID for S11 is the MME TEID used in the interface between MME and SGW.
  • MME IP address for S11 is the MME IP address used in the interface between MME and SGW.
  • S-GW TEID for S11 / S4 is the TEID of SGW used in the interface between MME and SGW or the interface between SGSN and SGW.
  • S-GW IP address for S11 / S4 is the IP address of SGW used in the interface between MME and SGW or the interface between SGSN and SGW.
  • SGSN IP address for S4 is the IP address of SGSN used in the interface between SGSN and SGW.
  • SGSN TEID for S4 is the SGSN TEID used in the interface between SGSN and SGW.
  • Trace reference is identification information for identifying a specific trace record or a set of records.
  • Race ⁇ ⁇ Type indicates the type of trace. For example, the type that HSS traces and / or the type that MME, SGW, or PGW traces may be indicated.
  • Trigger ID is identification information that identifies the component that starts the trace.
  • OMCM Identity is identification information that identifies the OMC that received the traced record.
  • “Last known Cell ID” is the latest location information of the UE notified from the network.
  • Last known Cell ID is information indicating the period from when the Last known Cell ID is stored.
  • the EPS bearer context includes an EPS bearer context for each PDN connection stored for each PDN connection.
  • FIG. 15 (c) shows an EPS bearer context for each PDN connection.
  • EPS bearer context for each PDN connection is APN Use, EPS PDN Charging Characteristics, P-GW Address in Use (control information), P-GW TEID for S5 / S8 (control information), P- GW Address In use (user data), P-GW GRE Key for uplink (user data), S-GW IP address for S5 / S8 (control information), S-GW TEID for S5 / S8 (control information), S GW Address in Use (user data), S-GW GRE Key for downlink traffic (user data), Default Bearer are included.
  • APN in ⁇ Use indicates the recently used APN.
  • This APN is composed of APN network identification information and default operator identification information. This information is information acquired from the MME or SGSN.
  • EPS PDN Charging Characteristics indicates billing characteristics. EPS PDN Charging Characteristics may indicate, for example, normal, prepaid, fixed charge rate, or instant billing.
  • P-GW Address in Use is the IP address of the PGW that was used when the SGW recently sent control information.
  • P-GW TEID for S5 / S8 (control information) is an interface between SGW and PGW, and is TEGW of PGW used for transmission of control information.
  • P-GW In Use is the IP address of the PGW that SGW used recently when sending user data.
  • P-GW GRE Key for uplink (user data) is a GRE key for user data uplink communication of the interface between SGW and PGW.
  • S-GW IP address for S5 / S8 (control information) is the IP address of SGW used for the interface of control information between SGW and PGW.
  • S-GW TEID for S5 / S8 (control information) is the TEID of SGW used for the interface of control information between GW and PGW.
  • S-GW Address Use is the IP address of the SGW that was recently used by the SGW to send the user data.
  • S-GW GRE Key downlink traffic (user data) is an uplink GRE key used for user data interface between SGW and PGW.
  • Default Bearer is information acquired and / or generated when a PDN connection is established, and is identification information for identifying a default bearer associated with the PDN connection.
  • EPS bearer context of SGW includes EPS bearer context for each bearer.
  • FIG. 15 (d) shows an EPS bearer context for each bearer.
  • EPS bearer context for each bearer is EPS Bearer Id, TFT, P-GW Address in Use (user data), P-GW TEID for S5 / S8 (user data), S-GW IP address for S5 / S8 (user data), S-GW TEID for S5 / S8 (user data), S-GW IP address for S1-u, S12 and S4 (user data), S-GW TEID for S1-u, S12 and S4 (user data), eNodeB IP address for S1-u, eNodeB TEID for S1-u, RNC IP address for S12, RNC TEID for S12, SGSN IP address for S4 (user data), SGSN TEID for S4 (user data) , EPS Bearer QoS, Charging Id.
  • EPS Bearer Id is the only identification information that identifies EPS bearers for UE connections via E-UTRAN. That is, it is identification information for identifying a bearer. In other words, “EPS—Bearer” Id is identification information of the EPS bearer. Further, EPS Bearer Id may be identification information for identifying SRB and / or CRB, or may be identification information for identifying DRB.
  • TFT indicates all packet filters associated with the EPS bearer.
  • the TFT is information for identifying part of user data to be transmitted / received
  • the SGW_A 35 transmits / receives the user data identified by the TFT using an EPS bearer associated with the TFT.
  • SGW_A35 transmits / receives user data identified by the TFT using an EPS bearer including an RB associated with the TFT.
  • SGW_A35 may transmit / receive user data that cannot be identified by TFT using a default bearer.
  • SGW_A35 may store the TFT in advance in association with the default bearer.
  • PP-GW In ⁇ ⁇ ⁇ Use is the interface between SGW and PGW, and is the IP address of the PGW that was recently used for user data transmission.
  • P-GW TEID for S5 / S8 (user data) is the PGW TEID for user data interface between SGW and PGW.
  • S-GW IP address for S5 / S8 (user data) is the IP address of SGW for user data received from PGW.
  • S-GW TEID for S5 / S8 (user data) is SGW's TEID for user data interface between SGW and PGW.
  • S-GW IP address for S1-u, S12 and S4 are SGW IP addresses used at the interface between SGW and 3GPP access network (LTE access network or GERAN / UTRAN).
  • S-GW IP address for S1-u, S12 and S4 (user data) is an interface between SGW and MME and / or SGSN when user data is included in the control information message It may be the IP address of SGW to be used in S-GW IP address for S11 / S4.
  • S-GW TEID for S1-u, S12 and ⁇ ⁇ ⁇ S4 (user data) are SGW TEIDs used at the interface between SGW and 3GPP access network (LTE access network or GERAN / UTRAN).
  • S-GW TEID for S1-u, S12 and S4 (user data) is an interface between SGW and MME and / or SGSN when user data is included in the control information message. It may be the TEID of the SGW used, or S-GW-TEID for S11 / S4.
  • ENodeB IP address for S1-u is the IP address of eNB used for transmission between SGW and eNB.
  • eNodeB ⁇ ⁇ IP ⁇ ⁇ address for S1-u may be the MME IP address used in the interface between MME and SGW when user data is included in the control information message, and MME IP address for It may be S11.
  • ENodeB TEID for S1-u is the eNB TEID used for transmission between SGW and eNB.
  • eNodeB ⁇ ⁇ ⁇ TEID for S1-u may be the MME TEID used in the interface between the MME and SGW when user data is included in the control information message and is MME TEID for S11. May be.
  • RNC IP address for S12 is the RNC IP address used for the interface between SGW and UTRAN.
  • RNC TEID for S12 is the RNC TEID used for the interface between SGW and UTRAN.
  • SGSN IP address for S4 (user data) is an IP address of SGSN used for transmission of user data between SGW and SGSN.
  • SGSN TEID for S4 (user data) is the SGSN TEID used to transmit user data between SGW and SGSN.
  • EPS Bearer QoS represents the QoS of this bearer and may include ARP, GBR, MBR, and QCI.
  • ARP is information indicating the priority related to maintaining a bearer.
  • GBR Guaranteed Bit Bit Rate
  • MBR Maximum Bit Bit Rate
  • QCI can be divided into classes according to the presence / absence of bandwidth control, allowable delay time, packet loss rate, etc.
  • QCI includes information indicating priority.
  • Charging Id is identification information for recording the billing generated by SGW and PGW.
  • FIG. 16 (a) shows the device configuration of PGW_A30.
  • the PGW_A 30 includes a network connection unit_D1620, a control unit_D1600, and a storage unit_D1640.
  • the network connection unit _D1620 and the storage unit _D1640 are connected to the control unit _D1600 via a bus.
  • Control unit_D1600 is a functional unit for controlling PGW_A30.
  • the control unit_D1600 implements various processes by reading and executing various programs stored in the storage unit_D1640.
  • the network connection unit_D1620 is a functional unit for the PGW_A30 to connect to the SGW_A35 and / or PCRF_A60 and / or ePDG_A65 and / or AAA_A55 and / or TWAG_A74 and / or PDN_A5.
  • the network connection unit _D1620 is a transmission / reception function unit in which the PGW_A30 transmits / receives user data and / or control data from the SGW_A35 and / or PCRF_A60 and / or ePDG_A65 and / or AAA_A55 and / or TWAG_A74 and / or PDN_A5. .
  • Storage unit_D1640 is a functional unit that stores programs and data necessary for each operation of PGW_A30.
  • the storage unit_D1640 is configured by, for example, a semiconductor memory, an HDD (Hard Disk Disk Drive), or the like.
  • the storage unit_D1640 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received in a communication procedure described later.
  • the storage unit_D1640 stores the EPS bearer context 1642 as shown in the figure.
  • EPS bearer context what is stored for each UE, what is stored for each APN, what is stored for each PDN connection, and what is stored for each bearer are stored separately. May be.
  • FIG. 17 (b) shows information elements included in the EPS bearer context stored for each UE.
  • EPS bearer context stored for each UE includes IMSI, IMSI-unauthenticated-indicator, ME Identity, MSISDN, Selected CN operator id, RAT type, Trace reference, Trace type, Trigger id, OMC identity. Including.
  • IMSI is identification information assigned to a user who uses the UE.
  • IMSI-unauthenticated-indicator is instruction information indicating that this IMSI is not authenticated.
  • ME Identity is the UE ID, and may be, for example, IMEI / IMISV.
  • MSISDN represents the basic phone number of the UE. MSISDN is indicated by the storage part of HSS_A50.
  • the “selected CN” operator ID is identification information of the selected core network operator used for sharing the network among operators.
  • RAT type indicates the UE's recent RAT (Radio Access Technology).
  • the RAT type may be, for example, E-UTRA (LTE) or UTRA.
  • Trace reference is identification information for identifying a specific trace record or a set of records.
  • Trace type indicates the type of trace. For example, the type that HSS traces and / or the type that MME, SGW, or PGW traces may be indicated.
  • Trigger ID is identification information that identifies the component that starts the trace.
  • OMCM Identity is identification information that identifies the OMC that received the traced record.
  • Fig. 17 (c) shows the EPS bearer context stored for each APN.
  • the EPS bearer context stored for each APN of the PGW storage unit includes APN in use and APN-AMBR.
  • APN in ⁇ Use indicates the recently used APN.
  • This APN is composed of APN network identification information and default operator identification information. This information is obtained from SGW.
  • APN-AMBR indicates the maximum value of MBR (Maximum Bit Rate) for uplink communication and downlink communication for sharing all Non-GBR bearers (non-guaranteed bearers) established for this APN.
  • MBR Maximum Bit Rate
  • Fig. 18 (d) shows the EPS bearer context for each PDN connection stored for each PDN connection.
  • EPS bearer context for each PDN connection consists of IP Address, PDN Type, S-GW Address In use (control information), S-GW TEID for S5 / S8 (control information), S-GW Address In Use (user data), S-GW GRE Key downlink (traffic (user data), P-GW IP address for S5 / S8 (control information), P-GW TEID for S5 / S8 (control information), P-GW Address in Use (user data), P-GW GRE for uplink traffic (user data), MS Info Change Reporting support indication, MS Info Change Reporting Action, CSG Information Reporting Action, Presence Reporting Area Action, BCM, Default Bearer, EPS PDN Include Charging Characteristics.
  • IP Address indicates the IP address assigned to the UE for this PDN connection.
  • the IP address may be IPv4 and / or IPv6 prefix.
  • PDN type indicates the type of IP address.
  • PDN type indicates, for example, IPv4, IPv6, or IPv4v6.
  • S-GW Address in Use is the IP address of the SGW that is recently used to transmit control information.
  • S-GW TEID for S5 / S8 (control information) is the TEID of SGW used for transmission / reception of control information between SGW and PGW.
  • S-GW In Use is the IP address of the SGW that was recently used for sending user data on the interface between the SGW and the PGW.
  • S-GW GRE Key for downlink traffic is an interface between SGW and PGW, and is a GRE key assigned for use in downlink communication of user data from PGW to SGW.
  • P-GW IP address for S5 / S8 (control information) is the IP address of the PGW used for control information communication.
  • P-GW TEID for S5 / S8 (control information) is PGW TEID for communication of control information using the interface between SGW and PGW.
  • P-GW Address in Use is the IP address of the PGW that was recently used to transmit user data using the interface between the SGW and the PGW.
  • GRE Key for “uplink traffic” (user data) is a GRE key assigned for user data uplink communication between SGW and PGW, that is, transmission of user data from SGW to PGW.
  • MS Info Change Reporting support indication indicates that the MME and / or SGSN supports the process of notifying user location information and / or user CSG information.
  • MS Info Change Reporting Action is information indicating whether the MME and / or SGSN is requested to transmit a change in the user location information.
  • CSG Information Reporting Action is information indicating whether the MME and / or SGSN is requested to transmit a change of the user's CSG information.
  • This information includes (a) for CSG cells, (b) for hybrid cells where the user is a CSG member, (c) for hybrid cells where the user is not a CSG member, and combinations thereof. Shown separately.
  • Presence Reporting Area Action indicates that it is necessary to notify the change of whether or not the UE exists in the presence reporting area (Presence Reporting Area).
  • This information element is divided into identification information of the presence report area and elements included in the presence report area.
  • BCM Breast Control Mode
  • Default Bearer is information acquired and / or generated when a PDN connection is established, and is EPS bearer identification information for identifying a default bearer associated with a PDN connection.
  • EPS PDN Charging Characteristics is a charging characteristic.
  • the charging characteristics may indicate, for example, normal (normal), prepaid, fixed charging rate, and immediate charging.
  • FIG. 18 (e) shows an EPS bearer context stored for each EPS bearer.
  • EPS bearer contexts are EPS Bearer Id, TFT, S-GW Address in Use (user data), S-GW TEID for S5 / S8 (user data), P-GW IP address for S5 / S8 (User data), P-GW TEID for S5 / S8 (User data), EPS Bearer QoS, Charging Id are included.
  • EPS Bearer Id is identification information that identifies access via UE's E-UTRAN.
  • EPS—Bearer Id is identification information of the EPS bearer.
  • EPS Bearer Id may be identification information for identifying SRB and / or CRB, or may be identification information for identifying DRB.
  • TFT Traffic Flow Template
  • the PGW_A 30 transmits / receives the user data identified by the TFT using an EPS bearer associated with the TFT.
  • the PGW_A 30 transmits / receives user data identified by the TFT using an EPS bearer including an RB associated with the TFT.
  • PGW_A30 may transmit / receive user data that cannot be identified by TFT using a default bearer.
  • PGW_A30 may store the TFT in advance in association with the default bearer.
  • S-GW Address in Use is the IP address of the SGW that was recently used for user data transmission.
  • S-GW TEID for S5 / S8 (user data) is the SGW TEID for user data communication using the interface between SGW and PGW.
  • P-GW IP address for S5 / S8 (user data) is the IP address of the PGW for user data received from the PGW.
  • P-GW TEID for S5 / S8 (user data) is PGW TEID for user data communication between SGW and PGW.
  • EPS Bearer QoS indicates the bearer QoS and may include ARP, GBR, MBR and QCI.
  • ARP is information indicating the priority related to maintaining a bearer.
  • GBR Guaranteed Bit Bit Rate
  • MBR Maximum Bit Bit Rate
  • QCI can be divided into classes according to the presence / absence of bandwidth control, allowable delay time, packet loss rate, etc.
  • QCI includes information indicating priority.
  • Charging Id is billing identification information for identifying a record related to billing generated by SGW and PGW.
  • FIG. 19 shows a device configuration of C-SGN_A95.
  • C-SGN_A95 includes a network connection unit_E1920, a control unit_E1900, and a storage unit_E1940.
  • the network connection unit_E1920 and the storage unit_E1940 are connected to the control unit_E1900 via a bus.
  • Control unit_E1900 is a functional unit for controlling C-SGN_A95.
  • the control unit_E1900 realizes various processes by reading and executing various programs stored in the storage unit_E1940.
  • Network connection unit_E1920 is a functional unit for C-SGN_A95 to connect with eNB_A45 and / or HSS_A50 and / or PDN_A5.
  • the network connection unit_E1920 is a transmission / reception function unit in which the C-SGN_A95 transmits and receives user data and / or control data from the eNB_A45 and / or HSS_A50 and / or PDN_A5.
  • Storage unit_E1940 is a functional unit that stores programs and data necessary for each operation of C-SGN_A95.
  • the storage unit_E1940 is configured by, for example, a semiconductor memory, an HDD (Hard Disk Disk Drive), or the like.
  • the storage unit_E1940 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received in a communication procedure described later.
  • the storage unit_E1940 stores a context A1942, a context B1944, a context C1946, and a context D1948 as shown in the figure.
  • Context A 1942 may be the MME context 642 shown in FIG.
  • the context B1944 may be the security context 648 shown in FIG. 6 (a).
  • the context C1946 may be the MME emergency configuration data 650 shown in FIG. 6 (a).
  • context D1948 may be the EPS bearer context 1342 shown in FIG. 13 (a).
  • context E1950 may be the EPS bearer context 1642 shown in FIG.
  • the IMSI may be included in each of the context A 1942, the context D 1948, and the context E 1950, or may be stored in any context.
  • the storage unit_E1940 may include a TFT.
  • TFT is an abbreviation for Traffic Flow Template, and indicates all packet filters associated with EPS bearers.
  • the TFT is information for identifying a part of user data to be transmitted / received
  • the C-SGN_A95 transmits / receives the user data identified by the TFT using an EPS bearer associated with the TFT.
  • C-SGN_A95 transmits and receives user data identified by the TFT using an EPS bearer including an RB associated with the TFT.
  • C-SGN_A95 may transmit / receive user data that cannot be identified by TFT using a default bearer.
  • C-SGN_A95 may store the TFT in advance in association with the default bearer.
  • FIG. 20 (a) shows the device configuration of UE_A10.
  • the UE_A 10 includes a transmission / reception unit_F2020, a control unit_F2000, and a storage unit_F2040.
  • the transmission / reception unit_F2020 and the storage unit_F2040 are connected to the control unit_F2000 via a bus.
  • Control unit_F2000 is a functional unit for controlling UE_A10.
  • the control unit_F2000 implements various processes by reading and executing various programs stored in the storage unit_F2040.
  • the transmission / reception unit_F2020 is a functional unit for UE_A10 to connect to the LTE base station and to connect to the IP access network.
  • an external antenna _F2010 is connected to the transmission / reception unit _F2020.
  • the transmission / reception unit_F2020 is a functional unit for the UE_A10 to connect to the eNB_A45. Furthermore, the transmission / reception unit_F2020 is a transmission / reception function unit in which UE_A10 transmits and receives user data and / or control data from the eNB_A45.
  • Storage unit_F2040 is a functional unit that stores programs and data necessary for each operation of UE_A10.
  • the storage unit_F2040 is configured by, for example, a semiconductor memory, an HDD (Hard Disk Disk Drive), or the like.
  • the storage unit_F2040 may store at least identification information and / or control information and / or flags and / or parameters included in a control message transmitted and received within a communication procedure described later.
  • Storage unit_F2040 stores UE context 2042, as shown in the figure. Hereinafter, the information elements stored in the storage unit_F2040 will be described.
  • FIG. 20 (a) shows information elements included in the UE context stored for each UE.
  • the UE context stored for each UE is IMSI, EMMEMState, GUTI, ME Identity, Tracking Area List, last visited TAI, Selected NAS Algorithm, Selected AS Algorithm, eKSI, K_ASME, NAS Keys and COUNT , TIN, UE Specific DRX Parameters, Allowed CSG list, Operator CSG list.
  • IMSI is the permanent identification information of the subscriber.
  • EMMM State indicates the UE mobility management status.
  • the EMM-REGISTERED registered state, registered state
  • the EMM-DEREGISTERD unregistered state, deregistered state
  • GUTI is an abbreviation for Globally Unique Unique Temporary Identity and is temporary identification information of UE.
  • the GUTI includes MME identification information (GUMMEI: GloballyGlobalUnique MME Identifier) and UE identification information (M-TMSI) in the specific MME.
  • GUMMEI GloballyGlobalUnique MME Identifier
  • M-TMSI UE identification information
  • ME Identity is the ID of ME, and may be, for example, IMEI / IMISV.
  • Tracking Area List is a list of tracking area identification information assigned to the UE.
  • “Last” visited ”TAI is tracking area identification information included in the Tracking” Area ”List, and is identification information of the latest tracking area visited by the UE.
  • “Selected NAS” Algorithm is the selected security algorithm of the NAS.
  • “Selected AS” Algorithm is a security algorithm selected by AS.
  • EKSI is a set of keys indicating K_ASME. Whether or not to use a security key acquired by UTRAN or E-UTRAN security authentication may be indicated.
  • K_ASME is an E-UTRAN key hierarchy key generated based on keys CK and IK.
  • NAS Keys and COUNT is composed of key K_NASint, key K_NASenc and NAS COUNT.
  • K_NASint is a key for encryption between UE and MME
  • K_NASenc is a key for security protection between UE and MME.
  • NAS COUNT is a count that starts counting when a new key is set when security between the UE and the MME is established.
  • TIN Temporal Identity used in Next update
  • RAU / TAU location information update procedure
  • UE Specific DRX Parameters is the DRX (Discontinuous Reception) cycle length of the selected UE.
  • the Allowed CSG list is a list of PLMNs associated with the CSG ID of the member to which the authorized UE belongs under the control of both the user and the operator.
  • the Operator CSG list is a list of PLMNs associated with the CSG ID of the member to which the authorized UE belongs under the control of the operator only.
  • Fig. 21 (c) shows the UE context for each PDN connection stored for each PDN connection.
  • the UE context for each PDN connection includes APN in Use, APN-AMBR, Assigned PDN Type, IP Address, Default Bearer, and WLAN offloadability.
  • APNAPin Use is a recently used APN. This APN may be composed of network identification information and default operator identification information.
  • APN-AMBR indicates the maximum value of MBR for uplink and downlink for sharing Non-GBR bearer (non-guaranteed bearer). APN-AMBR is established for each APN.
  • Assigned PDN Type is the type of PDN assigned from the network. Assigned PDN Type may be, for example, IPv4, IPv6, or IPv4v6.
  • the IP address is an IP address assigned to the UE, and may be an IPv4 address or an IPv6 prefix.
  • Default Bearer is information acquired from the core network_A90 when the PDN connection is established, and is EPS bearer identification information for identifying the default bearer associated with the PDN connection.
  • WLAN offloadability is WLAN offload permission information indicating whether to permit offload to WLAN using the interworking function between WLAN and 3GPP or to maintain 3GPP access.
  • FIG. 21 (d) shows a UE context for each bearer stored in the UE storage unit.
  • the UE context for each bearer includes EPS Bearer ID, TI, EPS bearer QoS, and TFT.
  • the EPS Bearer ID is the EPS bearer identification information.
  • the EPS Bearer ID may be identification information for identifying the SRB and / or CRB, or may be identification information for identifying the DRB.
  • TI is an abbreviation for Transaction Identifier, and is identification information that identifies a bidirectional message flow (Transaction).
  • TFT Traffic Flow Template
  • the TFT is information for identifying a part of user data to be transmitted / received
  • the UE_A 10 transmits / receives the user data identified by the TFT using an EPS bearer associated with the TFT.
  • UE_A 10 transmits and receives user data identified by the TFT using an RB associated with the TFT.
  • UE_A10 may transmit / receive user data that cannot be identified by TFT using a default bearer.
  • UE_A 10 may store the TFT in advance in association with the default bearer.
  • the communication procedure in the present embodiment first executes an attach procedure (S2200) as shown in FIG. UE_A10, and / or eNB_A45, and / or C-SGN_A95 may determine a data transmission / reception method in the attach procedure (S2200).
  • a specific data transmission / reception method may be transmission / reception based on any one of the first transmission / reception procedure, the second transmission / reception procedure, or the third transmission / reception procedure.
  • the PDN connection procedure (S2202) may be executed according to conditions described later.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may perform the first data transmission / reception (S2204) based on the transmission / reception method determined in the attach procedure.
  • the transmission / reception method change procedure (S2206) may be executed.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may change the data transmission / reception method by the transmission / reception method change procedure.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may perform the second data transmission / reception (S2208) based on the transmission / reception method determined in the transmission / reception method change procedure.
  • the first transmission / reception procedure is a procedure in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 transmits and receives user data using connectionless communication without establishing a DRB.
  • the first transmission / reception procedure may be a procedure for transmitting user data using an SRB and / or a CRB for transmitting / receiving a control message.
  • the second transmission / reception procedure is a procedure in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 in the idle mode in the present embodiment transmits / receives user data.
  • UE_A10, and / or eNB_A45, and / or C-SGN_A95 changes user data from the idle mode to the active mode in this embodiment, and then uses the established DRB. It is a procedure to send and receive.
  • the second transmission / reception procedure includes a procedure in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 transition from the active mode to the idle mode in the present embodiment after the transmission / reception of user data is completed. May be.
  • RB resources are released, but UE_A10 and / or eNB_A45 and / or C-SGN_A95 keeps holding the context for DRB and / or default bearer. It may be the mode shown.
  • the third transmission / reception procedure is a procedure in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 in the conventional idle mode transmits / receives user data.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 transmits / receives user data using the established DRB after transition from the conventional idle mode to the active mode. It is a procedure.
  • the third transmission / reception procedure may include a procedure in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 transition from the active mode to the conventional idle mode after the transmission / reception of user data is completed. Good.
  • the third transmission / reception procedure may be a conventional user data transmission / reception procedure.
  • the RB resources are released, and UE_A10, and / or eNB_A45, and / or C-SGN_A95 indicate that the context for DRB and / or default bearer is discarded. May be.
  • such an idle mode is described as a conventional idle mode in order to distinguish it from the above-described idle mode.
  • the connectionless communication in the present embodiment may be a communication in which UE_A 10 includes at least a process of including a NAS (Non Access Stratum) message including a data packet in an RRC (Radio R Source Control) message and transmitting it to eNB_A45. And / or the communication which transmits / receives a data packet between UE_A10 and eNB_A45, without establishing a RRC connection may be sufficient. And / or the communication which UE_A10 transmits / receives a data packet in an idle state may be sufficient. Furthermore, in other words, the connectionless communication may be communication that transmits and receives user data using SRB or CRB.
  • NAS Non Access Stratum
  • RRC Radio R Source Control
  • the active mode in this embodiment means that UE_A10 and / or eNB_A45 and / or C-SGN_A95 can establish a DRB and / or Default Bearer and / or PDN connection to transmit / receive user data. It may be a mode that indicates a state.
  • the DRB in the present embodiment may be a communication path such as a radio bearer established for transmission / reception of user data.
  • the PDN connection in the present embodiment may be a connection for user data transmission / reception established between UE_A10 and C-SGN_A95.
  • the idle mode and / or the conventional idle mode in the present embodiment means that UE_A10 and / or eNB_A45 and / or C-SGN_A95 releases DRB and / or Default Bearer resources, and user data It may be a mode indicating a state in which the transmission / reception cannot be performed.
  • the attach completion state in the present embodiment is a state in which authentication is obtained and the network is connected. This is a state in which user data can be transmitted and received between UE_A10 and PDN_A5.
  • the attach completion state may be a state in which UE_A10 and / or PDN_A5, and / or eNB_A45, and / or C-SGN_A95 can transmit and receive user data.
  • the attachment completion state may include the following first mode, second mode, third mode, fourth mode, and fifth mode.
  • Each mode can be distinguished by the presence / absence of PDN connection and / or a difference in data transmission / reception method and / or a difference in stored information at the time of transition to the idle mode, and will be described in detail below.
  • the first mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has established a PDN connection.
  • / or the first mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has established a default bearer.
  • / or the first mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has not established a dedicated bearer.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 can transmit and receive user data.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 transmits and receives user data without connection.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 transmits / receives user data without establishing an RRC connection.
  • / or the first mode may be a mode in which UE_A10 and / or C-SGN_A95 transmits and receives user data included in a NAS message.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 transmits / receives user data included in the RRC message.
  • the first mode may be a mode in which UE_A10 and / or eNB_A45 transmits and receives a NAS-PDU (Packet Data Unit) included in the RRC message.
  • the NAS-PDU may be a control message including user data in a NAS message.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 transmits / receives user data using SRB.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 transmits and receives user data using CRB.
  • the SRB and CRB may be communication paths such as a radio bearer used for transmission / reception of control messages.
  • / or the first mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 transmits and receives user data using a bearer that transmits and receives control information.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may transmit and receive user data using the first transmission / reception procedure.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may use the first transmission / reception method as a first transmission / reception method using the first transmission / reception procedure. .
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may use the EPS bearer including the SRB and / or CRB as the default bearer.
  • the default bearer may be the first bearer or a bearer for transmitting / receiving user data by the first transmission / reception method.
  • the second mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has not established a PDN connection.
  • / or the second mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has not established a default bearer.
  • / or the second mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has not established a dedicated bearer.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 cannot transmit / receive user data.
  • / or the second mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has decided to transmit and receive user data without connection.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 has decided to transmit / receive user data without establishing an RRC connection.
  • / or the second mode may be a mode in which UE_A10 and / or C-SGN_A95 is determined to be included in the NAS message to transmit / receive user data.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 are included in the RRC message and decided to transmit / receive user data.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 is included in the RRC message and has decided to transmit / receive NAS PDU (Packet Data Unit).
  • the NAS-PDU may be a control message including user data in a NAS message.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 has decided to transmit / receive user data using the SRB.
  • / or the second mode may be a mode in which UE_A10 and / or eNB_A45 has decided to transmit / receive user data using CRB.
  • the SRB and CRB may be communication paths such as a radio bearer used for transmission / reception of control messages.
  • / or the second mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 determines to transmit / receive user data using a bearer that transmits / receives control information.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may determine to transmit / receive user data using the first transmission / reception procedure.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 shall use the first transmission / reception procedure as the first transmission / reception method. May be determined.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may determine that the EPS bearer including the SRB and / or CRB is the default bearer.
  • the default bearer may be the first bearer or a bearer for transmitting / receiving user data by the first transmission / reception method.
  • the third mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has established a PDN connection.
  • And / or the third mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 keeps the context when transitioning to the idle mode.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has established a default bearer.
  • / or the third mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has not established a dedicated bearer.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 can transmit and receive user data.
  • / or the third mode may be a mode in which user data is transmitted / received using a connection established by UE_A10 and / or eNB_A45 and / or C-SGN_A95.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 establishes an RRC connection and transmits / receives user data.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 transmits and receives user data using DRB.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 establishes a bearer for transmitting / receiving user data and transmits / receives user data.
  • And / or the third mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 keeps the context even when transitioning to the idle mode.
  • / or the third mode may be a mode in which UE_A10 and / or eNB_A45 can transmit and receive a NAS message in the third message of RRC.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may transmit and receive user data using the second transmission / reception procedure.
  • UE_A10, and / or eNB_A45, and / or C-SGN_A95 may use a method of transmitting and receiving user data using the second transmission / reception procedure as the first transmission / reception method. .
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may use an EPS bearer including DRB as a default bearer.
  • the default bearer may be the first bearer or a bearer for transmitting / receiving user data by the first transmission / reception method.
  • the PDN connection established when the mode is changed to the third mode may change to the idle mode in the present embodiment in accordance with conditions such as no transmission / reception of user data.
  • the fourth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has not established a PDN connection.
  • / or the fourth mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has not established a default bearer.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has not established a dedicated bearer.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 cannot transmit / receive user data.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 determines to establish a connection and transmit / receive user data.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 determines to establish RRC connection and transmit / receive user data.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 has decided to transmit / receive user data using DRB.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 establishes a bearer for transmitting / receiving user data and determines to transmit / receive user data. Good.
  • And / or the fourth mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 is determined to continue to hold the context even when transitioning to the idle mode.
  • / or the fourth mode may be a mode in which UE_A10 and / or eNB_A45 determines that the NAS message can be inserted into the third message of RRC and transmitted / received.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may determine to transmit / receive user data using the second transmission / reception procedure.
  • UE_A10, and / or eNB_A45, and / or C-SGN_A95 shall use the second transmission / reception procedure as the first transmission / reception method. May be determined.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may determine that the EPS bearer including DRB is the default bearer.
  • the default bearer may be the first bearer or a bearer for transmitting / receiving user data by the first transmission / reception method.
  • the fifth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 has established a PDN connection.
  • / or the fifth mode may be a mode in which UE_A10, and / or eNB_A45, and / or C-SGN_A95 has established a default bearer.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 can transmit and receive user data.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 transmits and receives user data using DRB.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 establishes a bearer for transmitting and receiving user data and transmits and receives user data.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 establishes a default bearer and transmits / receives user data.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 and / or C-SGN_A95 establishes two or more bearers and transmits / receives user data.
  • / or the fifth mode may be a mode in which the context is discarded when UE_A10 and / or eNB_A45 and / or C-SGN_A95 transitions to the idle mode.
  • / or the fifth mode may be a mode in which UE_A10 and / or eNB_A45 cannot transmit and receive a NAS message in the third message of RRC.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may transmit and receive user data using the third transmission / reception procedure.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may use a method of transmitting / receiving user data using the third transmission / reception procedure as the first transmission / reception method. .
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may use an EPS bearer including DRB as a default bearer.
  • the default bearer may be the first bearer or a bearer for transmitting / receiving user data by the first transmission / reception method.
  • the PDN connection established when transitioning to the fifth mode may transition to the conventional idle mode depending on conditions such as no transmission / reception of user data.
  • the first identification information in this embodiment may be PreferredPNetwork Behavior.
  • the first identification information may be identification information including one or more meanings among the second to sixth identification information.
  • one or more pieces of identification information among the second to sixth pieces of identification information may be included in the first identification information and transmitted / received.
  • the second identification information in this embodiment may be UE Control Plane CIoT EPS Optimisation Capability.
  • the second identification information may be information indicating that the UE_A 10 has the ability to transmit / receive user data using the first transmission / reception procedure.
  • the third identification information in this embodiment may be UE User Plane CIoT EPS optimisation Capability.
  • the third identification information may be information indicating that the UE_A 10 has an ability to transmit / receive user data using the second transmission / reception procedure.
  • the fourth identification information may be UE CIoT optimisation Preference.
  • the fourth identification information may be information indicating a user data transmission / reception method requested by UE_A10.
  • the fifth identification information in the present embodiment may be UE S1-u data transfer Capability.
  • the fifth identification information may be information indicating that the UE_A 10 has an ability to transmit / receive user data using the third transmission / reception procedure.
  • the sixth identification information in the present embodiment may be information indicating whether or not to establish a PDN connection.
  • the seventh identification information in this embodiment may be SupportedSupportNetwork Behavior.
  • the seventh identification information may be identification information including one or more meanings among the eighth to sixteenth identification information.
  • one or more pieces of identification information among the eighth to sixteenth pieces of identification information may be included in the seventh piece of identification information and transmitted / received.
  • the eighth identification information in the present embodiment may be Network Control Plane CIoT EPS optimisation Capability.
  • the eighth identification information may be information indicating that the core network_A90 has a capability of transmitting / receiving user data using the first transmission / reception procedure.
  • the ninth identification information in the present embodiment may be Network User Plane CIoT EPS optimisation Capability.
  • the ninth identification information may be information indicating that the core network_A90 has a capability of transmitting / receiving user data using the second transmission / reception procedure.
  • the tenth identification information in the present embodiment may be Network Control Plane CIoT EPS optimisation Allowance.
  • the tenth identification information may be information indicating that the core network_A90 permits transmission / reception of user data using the first transmission / reception procedure.
  • the eleventh identification information in this embodiment may be Network User Plane CIoT EPS optimisation Allowance.
  • the eleventh identification information may be information indicating that the core network_A90 permits transmission / reception of user data using the second transmission / reception procedure.
  • the twelfth identification information in this embodiment may be Network CIoT EPS optimization Preference.
  • the twelfth identification information may be information indicating a user data transmission / reception method requested by the core network_A90.
  • the thirteenth identification information in this embodiment may be Authorized CIoT optimisation Preference.
  • the thirteenth identification information may be information indicating an approved user data transmission / reception method.
  • the 14th identification information in the present embodiment may be Network S1-u data transfer Capability.
  • the fourteenth identification information may be information indicating that the core network_A90 has a capability of transmitting / receiving user data using the third transmission / reception procedure.
  • the fifteenth identification information in the present embodiment may be information indicating whether or not to establish a PDN connection.
  • the sixteenth identification information in this embodiment may be an EPS Bearer ID. Note that the sixteenth identification information may be transmitted and received by being included in the attach acceptance message and / or the default EPS bearer context activation request message.
  • the 17th identification information in this embodiment may be an EPS Bearer ID.
  • the 17th identification information may be included in the bearer resource change request message and / or the EPS bearer context change request message and / or the EPS bearer context deactivation request message and transmitted / received.
  • the sixteenth identification information and / or the seventeenth identification information and / or the twenty-sixth identification information may include identification information for identifying an SRB and / or a CRB. It may be identification information for identifying.
  • the 18th identification information in the present embodiment may be information indicating a requested transmission / reception method after change.
  • the eighteenth identification information may be information indicating a method using the first transmission / reception procedure, or may be information indicating a method using the second transmission / reception procedure.
  • the nineteenth identification information in the present embodiment may be information indicating the type of RB after the requested change.
  • the 19th identification information may be information indicating SRB or information indicating DRB.
  • the twentieth identification information in the present embodiment may be information indicating the requested attach completion state mode after the change.
  • the 20th identification information may be information indicating the first mode or information indicating the third mode.
  • the 21st identification information in the present embodiment may be information indicating that a change in transmission / reception method is requested.
  • the 22nd identification information in the present embodiment may be “Updated” UE “CIoT” EPS “optimisation” Preference.
  • the 22nd identification information may be information indicating a transmission / reception method of updated user data requested by UE_A10.
  • the 23rd identification information in this embodiment may be “Updated Network” CIoT “EPS” optimization “Preference”.
  • the 23rd identification information may be information indicating a transmission / reception method of updated user data requested by the core network_A90.
  • the 24th identification information may be information indicating that re-establishment of the PDN connection is requested.
  • the 25th identification information in the present embodiment may be information indicating that re-establishment of the default bearer is requested.
  • the 26th identification information in this embodiment may be an EPS Bearer ID.
  • the 26th identification information may be transmitted and received by being included in an EPS bearer context change request message and / or an EPS bearer context change acceptance message and / or an EPS bearer context deactivation acceptance message.
  • the 27th identification information in this embodiment may be information indicating the approved transmission / reception method after change.
  • the 27th identification information may be information indicating a method using the first transmission / reception procedure, or may be information indicating a method using the second transmission / reception procedure.
  • the 28th identification information in this embodiment may be information indicating the type of RB after the approved change.
  • the 28th identification information may be information indicating SRB or information indicating DRB.
  • the 29th identification information in the present embodiment may be information indicating the mode of the attachment completion state after the approved change.
  • the 20th identification information may be information indicating the first mode or information indicating the third mode.
  • the 30th identification information in this embodiment may be information indicating that the change of the transmission / reception method has been approved.
  • the thirty-first identification information may be “Updated UE UE CIoT EPS” optimization “Preference”.
  • the thirty-first identification information may be information indicating a transmission / reception method of updated user data requested by UE_A10.
  • the thirty-second identification information in the present embodiment may be “Updated Network” CIoT “EPS” optimization “Preference”.
  • the thirty-second identification information may be information indicating a method for transmitting / receiving updated user data requested by the core network_A90.
  • the 33rd identification information in this embodiment may be “Updated” Authorized ”CIoT” “EPS” optimization “Preference”.
  • the thirty-third identification information may be information indicating an approved updated user data transmission / reception method.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 hold each identification information
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 has the capability indicated by each identification information. You may have.
  • each piece of identification information when two or more pieces of identification information among the first to thirty-third pieces of identification information are included in the same control message and transmitted, each piece of identification information may be included and transmitted. However, it may be included in the control message as one piece of identification information having the meaning indicated by each piece of identification information.
  • the first identification information may be identification information having the meanings indicated by the second to sixth identification information.
  • each identification information may be an information element configured as a flag or a parameter.
  • the attach procedure is a procedure initiated by UE_A10.
  • UE_A 10 is a procedure for connecting to the network.
  • the attach procedure is a procedure for connecting to the access network including the eNB 45, and further a procedure for connecting to the core network via the access network.
  • UE_A10 establishes a communication path for transmitting / receiving user data to / from PDN_A5 by the attach procedure.
  • the trigger for the UE_A 10 to start the attach procedure may be when the terminal power is turned on. Regardless of this, UE_A10 may start at an arbitrary timing as long as UE_A10 is not connected to core network_A90. Further, UE_A10 may transition to the attach completion state based on connection to core network_A90 and / or completion of the attach procedure.
  • UE_A10 transmits an attach request message to C-SGN_A95 (S2300).
  • UE_A10 may transmit an attach request message to eNB_A45, and the transmitted attach request message may be transferred to C-SGN_A95 via eNB_A45.
  • UE_A10 may select whether to include the PDN connection request message in the attach request message. More specifically, UE_A 10 may select whether to include an ESM message container including a PDN connection request message in the attach request message.
  • UE_A10 may indicate that a PDN connection request message and / or an ESM message container is included in the attach request message to request establishment of a PDN connection accompanying the attach procedure.
  • UE_A 10 may indicate that the PDN connection establishment message accompanying the attach procedure is not requested by not including the PDN connection request message and / or the ESM message container in the attach request message.
  • the attach request message is described as a combination of the attach request message and the PDN connection request message. Furthermore, when the description of the present embodiment expresses that the identification information is included in the attach request message, it means that the identification information is included in the attach request message and / or the PDN connection request message.
  • the UE_A10 may include at least one piece of identification information from the first to sixth pieces of identification information in the attach request message.
  • the UE_A 10 may request the mode of the attachment completion state to transit by transmitting an attach request message including one or more pieces of identification information of the first to sixth identification information.
  • one or more of the first to sixth identification information is not included in the attach request message and transmitted to C-SGN_A95, but is a control message different from the attach request message in the attach procedure. May be included in the transmission.
  • UE_A 10 may execute a request for ESM (EPS Session Management) information and a transmission / reception procedure of a control message that makes a response based on the request (S2302).
  • ESM EPS Session Management
  • C-SGN_A95 sends an ESM request message to UE_A10.
  • UE_A10 receives the ESM request message and sends a response message to C-SGN_A95.
  • UE_A10 may transmit one or more pieces of identification information among the first to sixth pieces of identification information included in the response message.
  • UE_A10 may encrypt and transmit the ESM response message. Further, UE_A10 may receive information for encrypting the ESM response message from C-SGN_A95. C-SGN_A95 may transmit information for encrypting the NAS message to UE_A10 upon reception of the attach request message.
  • the NAS message that transmits information for encrypting the NAS message may be a Security Mode Command message.
  • C-SGN_A95 receives the attach request message. Furthermore, one or more pieces of identification information among the first to sixth pieces of identification information are acquired based on the reception of the attach request message or the reception of the ESM response message.
  • C-SGN_A95 makes a transition to the attach completion state for UE_A10 based on information included in the attach request message, subscriber information, and identification information held by C-SGN_A95, and / or attach complete The state may be determined.
  • C-SGN_A95 transitions based on one or more pieces of identification information among the first to sixteenth pieces of identification information and / or presence / absence of an ESM message container and / or presence / absence of a PDN connection request message Select and decide whether the attachment completion status is the first mode, the second mode, the third mode, the fourth mode, or the fifth mode. Also good.
  • the selection and determination process described above will be described as a first determination (S2304).
  • the first condition is assumed to be true.
  • C-SGN_A95 holds the eighth identification information and / or the tenth identification information, and / or the twelfth identification information and / or the thirteenth identification information is the first transmission / reception procedure.
  • the second condition is assumed to be true.
  • the third identification information is included in the attach request message and / or the fourth identification information indicates a method using the second transmission / reception procedure, the third condition is assumed to be true.
  • C-SGN_A95 holds the ninth identification information and / or the eleventh identification information, and / or the twelfth identification information and / or the thirteenth identification information is the second transmission / reception procedure.
  • the fifth condition is assumed to be true.
  • the seventh condition is true if the attach request message includes an ESM message container and / or a PDN connection request message and / or the sixth identification information indicates that a PDN connection is established.
  • the 15th identification information indicates that a PDN connection is established, it is assumed that the 8th condition is true.
  • the ninth condition is true if the attach request message does not include an ESM message container and / or PDN connection request message and / or the sixth identification information indicates that no PDN connection is established.
  • the fifteenth identification information indicates that the PDN connection is not established, the tenth condition is assumed to be true.
  • C-SGN_A95 is true if the first condition is true and / or if the second condition is true and / or if the seventh condition is true and / or if the eighth condition is true In this case, the mode may transition to the first mode.
  • C-SGN_A95 is true if the first condition is true and the seventh condition is true and / or if the first condition is true and the eighth condition is true and / or , If the second condition is true and the seventh condition is true, and / or if the second condition is true and the eighth condition is true, and / or if the first condition is If true and the second condition is true, and / or if the seventh condition is true and the eighth condition is true, the transition may be made to the first mode.
  • C-SGN_A95 is true when the first condition is true, the second condition is true, and the seventh condition is true, and / or the first condition is true and the second condition is true. If the condition is true and the eighth condition is true, and / or if the first condition is true and the seventh condition is true and the eighth condition is true and / or When the second condition is true, the seventh condition is true, and the eighth condition is true, the transition may be made to the first mode.
  • C-SGN_A95 transitions to the first mode when the first condition is true, the second condition is true, the seventh condition is true, and the eighth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the first mode.
  • C-SGN_A95 is true if the first condition is true and / or if the second condition is true and / or if the ninth condition is true and / or if the tenth condition is true In this case, the mode may transit to the second mode.
  • C-SGN_A95 is true if the first condition is true and the ninth condition is true, and / or if the first condition is true and the tenth condition is true, and / or , If the second condition is true and the ninth condition is true, and / or if the second condition is true and the tenth condition is true, and / or if the first condition is When true and the second condition is true, and / or when the ninth condition is true and the tenth condition is true, the mode may transit to the second mode.
  • C-SGN_A95 is true when the first condition is true, the second condition is true, and the ninth condition is true, and / or the first condition is true and the second condition is true. If the condition is true and the tenth condition is true and / or if the first condition is true and the ninth condition is true and the tenth condition is true and / or When the second condition is true, the ninth condition is true, and the tenth condition is true, the mode may transit to the second mode.
  • C-SGN_A95 transitions to the second mode when the first condition is true, the second condition is true, the ninth condition is true, and the tenth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the second mode.
  • C-SGN_A95 is true if the third condition is true and / or if the fourth condition is true and / or if the seventh condition is true and / or if the eighth condition is true In this case, the mode may transition to the third mode.
  • C-SGN_A95 is true if the third condition is true and the seventh condition is true, and / or if the third condition is true and the eighth condition is true, and / or , If the fourth condition is true and the seventh condition is true and / or if the fourth condition is true and the eighth condition is true and / or if the third condition is When true and the fourth condition is true, and / or when the seventh condition is true and the eighth condition is true, the mode may transit to the third mode.
  • C-SGN_A95 is true if the third condition is true, the fourth condition is true, and the seventh condition is true, and / or the third condition is true and the fourth condition If the condition is true and the eighth condition is true and / or if the third condition is true and the seventh condition is true and the eighth condition is true and / or When the fourth condition is true, the seventh condition is true, and the eighth condition is true, the mode may transition to the third mode.
  • C-SGN_A95 transitions to the third mode when the third condition is true, the fourth condition is true, the seventh condition is true, and the eighth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the third mode.
  • C-SGN_A95 is true if the third condition is true and / or if the fourth condition is true and / or if the ninth condition is true and / or if the tenth condition is true In this case, the mode may transit to the fourth mode.
  • C-SGN_A95 is true if the third condition is true and the ninth condition is true, and / or if the third condition is true and the tenth condition is true, and / or , If the fourth condition is true and the ninth condition is true, and / or if the fourth condition is true and the tenth condition is true, and / or if the third condition is When true and the fourth condition is true, and / or when the ninth condition is true and the tenth condition is true, the mode may transit to the fourth mode.
  • C-SGN_A95 is true if the third condition is true, the fourth condition is true, and the ninth condition is true, and / or the third condition is true and the fourth condition If the condition is true and the tenth condition is true and / or if the third condition is true and the ninth condition is true and the tenth condition is true and / or When the fourth condition is true, the ninth condition is true, and the tenth condition is true, the mode may transit to the fourth mode.
  • C-SGN_A95 transitions to the fourth mode when the third condition is true, the fourth condition is true, the ninth condition is true, and the tenth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the fourth mode.
  • C-SGN_A95 is true if the fifth condition is true and / or if the sixth condition is true and / or if the seventh condition is true and / or if the eighth condition is true In this case, the mode may transition to the fifth mode.
  • C-SGN_A95 is true if the fifth condition is true and the seventh condition is true, and / or if the fifth condition is true and the eighth condition is true, and / or , If the sixth condition is true and the seventh condition is true, and / or if the sixth condition is true and the eighth condition is true, and / or if the fifth condition is If true and the sixth condition is true, and / or if the seventh condition is true and the eighth condition is true, the mode may transition to the fifth mode.
  • C-SGN_A95 is true when the fifth condition is true, the sixth condition is true, and the seventh condition is true, and / or the fifth condition is true and the sixth condition is true. If the condition is true and the eighth condition is true and / or if the fifth condition is true and the seventh condition is true and the eighth condition is true and / or When the sixth condition is true, the seventh condition is true, and the eighth condition is true, the transition may be made to the fifth mode.
  • C-SGN_A95 transitions to the fifth mode when the fifth condition is true, the sixth condition is true, the seventh condition is true, and the eighth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the fifth mode.
  • condition for transitioning to the attached completion state in each mode is not limited to the above.
  • C-SGN_A95 may start a procedure for establishing a PDN connection based on reception of an attach request message and / or transmission of an attach acceptance message and / or a first determination.
  • C-SGN_A95 establishes a PDN connection when transitioning to the first mode and / or the third mode and / or the fifth mode based on the first determination. You may start the procedure.
  • the C-SGN_A95 may be omitted without starting the procedure for establishing the PDN connection.
  • the procedure for establishing the PDN connection includes the IP-CAN session update procedure and / or transmission / reception of a default EPS bearer context activation request message, and / or transmission / reception of a default EPS bearer context activation acceptance message, and It may be configured by transmission / reception of an RRC connection reconfiguration request message and / or transmission / reception of an RRC connection reconfiguration completion message and / or transmission / reception of a bearer setting message.
  • C-SGN_A95 starts the IP-CAN session update procedure when transitioning to the first mode and / or the third mode and / or the fifth mode (S2306). Since the IP-CAN session update procedure may be the same as the conventional procedure, detailed description thereof is omitted.
  • C-SGN_A95 transmits an attach acceptance message to eNB_A45 upon completion of the first determination and / or the IP-CAN session update procedure (S2308).
  • C-SGN_A95 may transmit a default EPS bearer context activation request message together with an attach acceptance message based on the first determination.
  • the attach acceptance message is a combination of the attach acceptance message and the default EPS bearer context activation request message. Will be described. Further, in the description of the present embodiment, when it is expressed that the identification information is included in the attach acceptance message, it means that the identification information is included in the attach acceptance message and / or the default EPS bearer context activation request message.
  • C-SGN_A95 may include at least one or more pieces of identification information among the seventh to sixteenth pieces of identification information in the attach acceptance message.
  • C-SGN_A95 changes and / or newly creates one or more pieces of identification information from the seventh to sixteenth pieces of identification information based on the first determination, and includes them in the attach acceptance message. Also good.
  • C-SGN_A95 may include information indicating the transmission / reception method of user data determined in the thirteenth identification information based on the first determination.
  • the default EPS bearer context activation request message is a message requesting DRB establishment based on the first determination.
  • the default EPS bearer context activation request message may be a message not intended to establish a DRB.
  • the default EPS bearer context activation request message may be a Downlink generic NAS Transport message.
  • the default EPS bearer context activation acceptance message may be a message intended to establish a DRB.
  • C-SGN_A95 may set the connection state for UE_A10 to the idle mode in accordance with the transmission of the attach acceptance message based on the first determination.
  • C-SGN_A95 may set the connection state to UE_A10 to the idle mode based on the transition to the attach completion state.
  • C-SGN_A95 may set the connection state to UE_A10 to the idle mode based on the fact that the transition completion state of the transition is the first mode.
  • the connection state to the UE_A10 is activated along with the message transmission. It may be in mode.
  • ENB_A45 receives the attach acceptance message and transmits an RRC message including the attach acceptance message to UE_A10 (S2310).
  • the RRC message may be an RRC connection reconfiguration request message. Further, the RRC message may be a Direct Transfer message.
  • the UE_A10 receives the RRC message including the attach acceptance message. Furthermore, when one or more pieces of identification information among the seventh to sixteenth pieces of identification information are included in the attach acceptance message, the UE_A 10 acquires each piece of identification information.
  • UE_A10 transmits the RRC message to eNB_A45 (S2314).
  • the RRC message may be an RRC connection reconfiguration completion message.
  • ENB_A45 receives the RRC connection reconfiguration message and transmits a bearer configuration message to C-SGN_A95 based on the reception (S2316).
  • UE_A10 and / or eNB_A45 may omit the procedures of (S2314) and (S2316) based on the first determination.
  • UE_A 10 transmits an RRC message including an attach completion message to eNB_A 45 based on the reception of the attach acceptance message (S2318).
  • UE_A 10 may transmit a default EPS bearer context activation acceptance message together with an attach completion message based on the first determination.
  • the default EPS bearer context activation acceptance message may be a response message to the default EPS bearer context activation request message.
  • the attach completion message is described as a combination of the attach completion message and the default EPS bearer context activation acceptance message.
  • the identification information is included in the attach completion message in the description of the present embodiment, it means that the identification information is included in the attach completion message and / or the default EPS bearer context activation acceptance message.
  • the RRC message to be transmitted including the attach completion message may be a Direct Transfer message.
  • UE_A10 transitions to the attach completion state based on the reception of the attach acceptance message and / or the transmission of the attach completion message.
  • UE_A10 may recognize and determine a transition completion state of attachment based on information included in the attach acceptance message and identification information included in UE_A10.
  • UE_A10 may be based on one or more of the first to sixteenth identification information and / or presence / absence of an ESM message container and / or presence / absence of a default EPS bearer context activation acceptance message. , Approve and determine whether the transition completion state of the transition is the first mode, the second mode, the third mode, the fourth mode, or the fifth mode May be.
  • the above-described approval / determination process will be described as a second determination (S2312).
  • the eleventh condition is assumed to be true.
  • the attach acceptance message includes the eighth identification information and / or the tenth identification information, and / or the twelfth identification information and / or the thirteenth identification information is the first transmission / reception procedure. And / or the 16th identification information is identification information for identifying SRB and / or CRB, the 12th condition is true.
  • the thirteenth condition is assumed to be true.
  • the 9th identification information and / or the 11th identification information is included in the attach acceptance message, and / or the 12th identification information and / or the 13th identification information is the second transmission / reception procedure.
  • the 14th condition is assumed to be true.
  • the 14th identification information is included in the attach acceptance message and / or the 16th identification information is identification information for identifying the DRB, it is assumed that the 16th condition is true.
  • the attach accept message includes an ESM message container and / or default EPS bearer context activation request message and / or the sixth identification information indicates that a PDN connection is established, the seventeenth condition Is true.
  • the attach accept message does not include an ESM message container and / or default EPS bearer context activation request message and / or the sixth identification information indicates that a PDN connection is not established, Suppose the condition is true.
  • the 20th condition is assumed to be true.
  • C-SGN_A95 is true if the eleventh condition is true and / or the twelfth condition is true and / or the seventeenth condition is true and / or the eighteenth condition is true.
  • the mode may transition to the first mode.
  • C-SGN_A95 is true if the eleventh condition is true and the seventeenth condition is true, and / or if the eleventh condition is true and the eighteenth condition is true, and / or The twelfth condition is true and the seventeenth condition is true; and / or the twelfth condition is true and the eighteenth condition is true; and / or the eleventh condition is If true and the twelfth condition is true, and / or if the seventeenth condition is true and the eighteenth condition is true, the transition to the first mode may be made.
  • C-SGN_A95 is true when the eleventh condition is true, the twelfth condition is true, and the seventeenth condition is true, and / or the eleventh condition is true, and If the condition is true and the eighteenth condition is true and / or the eleventh condition is true and the seventeenth condition is true and the eighteenth condition is true and / or If the twelfth condition is true, the seventeenth condition is true, and the eighteenth condition is true, the transition to the first mode may be made.
  • C-SGN_A95 transitions to the first mode when the eleventh condition is true, the twelfth condition is true, the seventeenth condition is true, and the eighteenth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the first mode.
  • C-SGN_A95 is true if the eleventh condition is true and / or the twelfth condition is true and / or the nineteenth condition is true and / or the twentieth condition is true. In this case, the mode may transit to the second mode.
  • C-SGN_A95 is true if the eleventh condition is true and the nineteenth condition is true, and / or if the eleventh condition is true and the twentieth condition is true, and / or The twelfth condition is true and the nineteenth condition is true; and / or the twelfth condition is true and the twentieth condition is true; and / or the eleventh condition is When true and the twelfth condition is true, and / or when the nineteenth condition is true and the twentieth condition is true, the mode may transit to the second mode.
  • C-SGN_A95 is true when the eleventh condition is true, the twelfth condition is true, and the nineteenth condition is true, and / or the eleventh condition is true and the twelfth condition is true. If the condition is true and the twentieth condition is true, and / or the eleventh condition is true, the nineteenth condition is true, and the twentieth condition is true, and / or When the twelfth condition is true, the nineteenth condition is true, and the twentieth condition is true, a transition to the second mode may be made.
  • C-SGN_A95 transitions to the second mode when the eleventh condition is true, the twelfth condition is true, the nineteenth condition is true, and the twentieth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the second mode.
  • C-SGN_A95 is true if the thirteenth condition is true and / or the fourteenth condition is true and / or the seventeenth condition is true and / or the eighteenth condition is true. In this case, the mode may transition to the third mode.
  • C-SGN_A95 is true when the thirteenth condition is true and the seventeenth condition is true, and / or when the thirteenth condition is true and the eighteenth condition is true, and / or The fourteenth condition is true and the seventeenth condition is true; and / or the fourteenth condition is true and the eighteenth condition is true; and / or the thirteenth condition is If true and the fourteenth condition is true, and / or if the seventeenth condition is true and the eighteenth condition is true, a transition may be made to the third mode.
  • C-SGN_A95 is true if the thirteenth condition is true, the fourteenth condition is true, and the seventeenth condition is true, and / or the thirteenth condition is true and the fourteenth condition If the condition is true and the eighteenth condition is true and / or the thirteenth condition is true and the seventeenth condition is true and the eighteenth condition is true and / or If the fourteenth condition is true, the seventeenth condition is true, and the eighteenth condition is true, a transition to the third mode may be made.
  • C-SGN_A95 transitions to the third mode when the thirteenth condition is true, the fourteenth condition is true, the seventeenth condition is true, and the eighteenth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the third mode.
  • C-SGN_A95 is true if the thirteenth condition is true and / or the fourteenth condition is true and / or the nineteenth condition is true and / or the twentieth condition is true. In this case, the mode may transit to the fourth mode.
  • C-SGN_A95 is true when the thirteenth condition is true and the nineteenth condition is true, and / or when the thirteenth condition is true and the twentieth condition is true, and / or The fourteenth condition is true and the nineteenth condition is true; and / or the fourteenth condition is true and the twentieth condition is true; and / or the thirteenth condition is If true and the fourteenth condition is true, and / or if the nineteenth condition is true and the twentieth condition is true, the mode may transit to the fourth mode.
  • C-SGN_A95 is true when the thirteenth condition is true, the fourteenth condition is true, and the nineteenth condition is true, and / or the thirteenth condition is true and the fourteenth condition If the condition is true and the twentieth condition is true, and / or the thirteenth condition is true, the nineteenth condition is true, and the twentieth condition is true, and / or When the fourteenth condition is true, the nineteenth condition is true, and the twentieth condition is true, a transition to the fourth mode may be made.
  • C-SGN_A95 transitions to the fourth mode when the thirteenth condition is true, the fourteenth condition is true, the nineteenth condition is true, and the twentieth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the fourth mode.
  • C-SGN_A95 is true if the fifteenth condition is true and / or the sixteenth condition is true and / or the seventeenth condition is true and / or the eighteenth condition is true. In this case, the mode may transition to the fifth mode.
  • C-SGN_A95 is true if the fifteenth condition is true and the seventeenth condition is true, and / or the fifteenth condition is true and the eighteenth condition is true, and / or The sixteenth condition is true and the seventeenth condition is true, and / or the sixteenth condition is true and the eighteenth condition is true, and / or the fifteenth condition is If true and the sixteenth condition is true, and / or if the seventeenth condition is true and the eighteenth condition is true, a transition may be made to the fifth mode.
  • C-SGN_A95 is true when the 15th condition is true, the 16th condition is true, and the 17th condition is true, and / or the 15th condition is true and the 16th condition If the condition is true and the eighteenth condition is true and / or the fifteenth condition is true and the seventeenth condition is true and the eighteenth condition is true and / or When the sixteenth condition is true, the seventeenth condition is true, and the eighteenth condition is true, a transition to the fifth mode may be made.
  • C-SGN_A95 transitions to the fifth mode when the fifteenth condition is true, the sixteenth condition is true, the seventeenth condition is true, and the eighteenth condition is true. May be.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the fifth mode.
  • condition for transitioning to the attached completion state in each mode is not limited to the above.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may establish a PDN connection based on transmission / reception of an attach acceptance message and / or transmission / reception of an attach completion message and / or the fourth determination. Good.
  • a default bearer may be established when establishing a PDN connection.
  • the RB configuring the default bearer may be a DRB.
  • the RB configuring the default bearer may be an SRB.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 is PDN connection and / or default bearer and / or SRB may be established.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 does not establish the PDN connection and / or default bearer. May be.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may establish a DRB.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may not establish the DRB.
  • UE_A10, and / or eNB_A45, and / or C-SGN_A95 may establish an SRB without establishing a DRB.
  • ENB_45 receives the RRC message including the attach completion message, and transmits the attach completion message to C-SGN_A95 (S2320).
  • UE_A10 may transition to the idle mode with the transmission of the attach completion message based on the second determination. More specifically, UE_A10 may transition to the idle mode with the transmission of the attach completion message when the attach completion state to be transitioned is the third mode and / or the fifth mode.
  • the RRC message may be received from eNB_A45 as a response to the Direct Transfer message including the attach completion message, and UE_A10 may transition to the idle mode with the reception of the response message based on the second determination.
  • the UE_A 10 may transmit the attach complete message and / or the direct transfer message including the identification information indicating the transition to the idle mode.
  • eNB_A45 that has received the Direct Transfer message may transmit an RRC message as a response to UE_A10 based on the received identification information.
  • the RRC message as a response may be a message for permitting transition to the idle mode.
  • UE_A 10 can select whether to transition to the idle mode or maintain the active mode based on the second determination.
  • C-SGN_A95 receives the attach complete message.
  • C-SGN_A95 may transition the connection state for UE_A10 to the idle mode based on the reception of the attach completion message.
  • C-SGN_A95 may manage the state of UE_A10 as the idle mode based on the transmission of the attach acceptance message or the reception of the attach completion message.
  • C-SGN_A95 determines whether UE_A10 is based on the transmission of the attachment acceptance message or the reception of the attachment completion message. May be managed as an idle mode.
  • UE_A10 and / or eNB_A45 may identify the type of RB established as the default bearer based on the sixteenth identification information.
  • UE_A10 and / or eNB_A45 recognizes that SRB and / or CRB is established as a default bearer when the 16th identification information is identification information for identifying SRB and / or CRB. May be.
  • UE_A10 and / or eNB_A45 may recognize that DRB has been established as a default bearer when the 16th identification information is identification information for identifying DRB.
  • UE_A10 connects to the network and completes the attach procedure. As the attach procedure is completed, UE_A10 and / or C-SGN_A95 transition to the attach complete state.
  • the UE_A 10 can acquire and store the UE context described in FIG. 21 from the core network_A 90 by the attach procedure.
  • the UE context described in FIG. Can be acquired from the core network_A90 and stored.
  • the UE_A 10 performs, according to the attach procedure, the UE context for each PDN connection and / or UE context described in FIG.
  • a UE context other than the UE context for each bearer can be acquired from the core network_A90 and stored.
  • C-SGN_A95 can acquire and store each context A to E described in FIG. 19 from UE_A10, eNB_A45, or HSS_A50 by the attach procedure.
  • C-SGN_A95 is described with reference to FIG. 19 by the attach procedure.
  • the contexts A to E can be acquired from UE_A10, eNB_A45, or HSS_A50 and stored.
  • C-SGN_A95 uses the attach procedure for each PDN connection in each of the contexts A to E described in FIG. EPS bearer contexts and / or contexts other than EPS bearer contexts for each bearer can be obtained from UE_A10, eNB_A45, or HSS_A50 and stored.
  • the core network_A90 in the example of the attach procedure described above has explained the attach procedure in the case of the core network having the configuration including C-SGN_A95 described with reference to FIG. 3, but the core network_A90 has been described with reference to FIG.
  • PGW_A30, SGW_A35, MME_A40, etc. may be included.
  • the NAS message such as the attach request message and attach complete message transmitted by UE_A10 described in this procedure is received by MME45 instead of C-SGN_A95.
  • the PDN connection procedure is a procedure initiated by UE_A10.
  • UE_A10 is a procedure for establishing a communication path for transmitting / receiving user data to / from PDN_A5.
  • the PDN connection procedure is a procedure for establishing a PDN connection used for transmission / reception of user data.
  • the trigger for the UE_A 10 to start the PDN connection procedure may be when the terminal power is turned on or when the attach procedure is completed. Further, the UE_A 10 may start the PDN connection procedure based on the transition to the attach completion state of the second mode and / or the fourth mode accompanying the completion of the attach procedure. Regardless of this, UE_A 10 may start the PDN connection procedure at an arbitrary timing.
  • UE_A10 establishes a PDN connection with PDN_A5 upon completion of the PDN connection procedure. Therefore, UE_A10 may change the mode of the attachment completion state based on the completion of the PDN connection procedure.
  • UE_A10 transmits a PDN connection request message to C-SGN_A95 (S2400).
  • UE_A10 may transmit a PDN connection request message to eNB_A45, and the transmitted PDN connection request message may be transferred to C-SGN_A95 via eNB_A45.
  • UE_A10 may include at least one or more of the first to fifth identification information in the PDN connection request message.
  • UE_A10 transmits the PDN connection request message including one or more pieces of identification information from the first to the fifth pieces of identification information, so that the type of PDN connection to be established and / or the transition of the attached completion state A mode may be requested.
  • C-SGN_A95 receives the PDN connection request message. Furthermore, one or more pieces of identification information among the first to fifth pieces of identification information are acquired based on reception of the PDN connection request message.
  • C-SGN_A95 establishes a PDN connection to UE_A10 and / or changes the attached completion state to UE_A10 based on the information included in the PDN connection request message, subscriber information, and identification information held by C-SGN_A95. You may decide.
  • C-SGN_A95 is based on one or more identification information of the first to sixteenth identification information, whether the attach completion state to transition is the first mode or the third mode, Whether the mode is the fifth mode may be selected and determined.
  • the selection and determination process described above will be described as a third determination (S2402).
  • the first condition is assumed to be true.
  • C-SGN_A95 holds the eighth identification information and / or the tenth identification information, and / or the twelfth identification information and / or the thirteenth identification information is the first transmission / reception procedure.
  • the second condition is assumed to be true.
  • the third identification information is included in the PDN connection request message and / or the fourth identification information indicates a method using the second transmission / reception procedure, the third condition is assumed to be true.
  • C-SGN_A95 holds the ninth identification information and / or the eleventh identification information, and / or the twelfth identification information and / or the thirteenth identification information is the second transmission / reception procedure.
  • the fifth condition is assumed to be true.
  • C-SGN_A95 is used when the first condition is true and / or when the second condition is true and / or when the first condition is true and the second condition is true. You may transition to mode 1.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the first mode.
  • C-SGN_A95 is used when the third condition is true and / or when the fourth condition is true and / or when the third condition is true and the fourth condition is true. You may transition to mode 3.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the third mode.
  • C-SGN_A95 is used when the fifth condition is true and / or when the sixth condition is true and / or when the fifth condition is true and the sixth condition is true. You may transition to 5 modes.
  • C-SGN_A95 is not limited to the above conditions, and may transition to the fifth mode.
  • condition for transitioning to the attached completion state in each mode is not limited to the above.
  • C-SGN_A95 initiates a procedure to establish a PDN connection based on reception of a PDN connection request message and / or transmission of a default EPS bearer context activation request message and / or a third decision. May be.
  • the procedure for establishing the PDN connection includes the IP-CAN session update procedure and / or transmission / reception of a default EPS bearer context activation request message, and / or transmission / reception of a default EPS bearer context activation acceptance message, and It may be configured by transmission / reception of an RRC connection reconfiguration request message and / or transmission / reception of an RRC connection reconfiguration completion message and / or transmission / reception of a bearer setting message.
  • C-SGN_A95 starts the IP-CAN session update procedure (S2404). Since the IP-CAN session update procedure may be the same as the conventional procedure, detailed description thereof is omitted.
  • C-SGN_A95 transmits a default EPS bearer context activation request message to eNB_A45 upon completion of the third determination and / or IP-CAN session update procedure (S2406).
  • the default EPS bearer context activation request message may be a response message to the PDN connection request message.
  • C-SGN_A95 may include at least one of the 7th to 16th identification information in the default EPS bearer context activation request message.
  • C-SGN_A95 changes and / or newly creates one or more identification information of the seventh to sixteenth identification information based on the third determination, and activates the default EPS bearer context. It may be included in the request message.
  • C-SGN_A95 may include information indicating the determined user data transmission / reception method in the thirteenth identification information based on the third determination.
  • the default EPS bearer context activation request message is a message requesting DRB establishment based on the third determination.
  • the default EPS bearer context activation request message may be a message not intended to establish a DRB.
  • the default EPS bearer context activation request message may be a Downlink generic NAS Transport message.
  • the default EPS bearer context activation acceptance message may be a message intended to establish a DRB.
  • C-SGN_A95 may set the connection state for UE_A10 to the idle mode in accordance with the transmission of the default EPS bearer context activation request message based on the third determination.
  • C-SGN_A95 may set the connection state to UE_A10 to the idle mode based on the transition to the attach completion state. More specifically, C-SGN_A95 may set the connection state to UE_A10 to the idle mode based on the fact that the transition completion state of the transition is the first mode.
  • the C-SGN_A95 transmits a default EPS bearer context activation request message for transitioning to the third mode and / or the fifth mode attachment completion state, the UE transmits to the UE_A10 when the message is transmitted.
  • the connection state may be set to the active mode.
  • ENB_A45 receives the default EPS bearer context activation request message and transmits an RRC message including the default EPS bearer context activation request message to UE_A10 (S2408).
  • the RRC message may be an RRC connection reconfiguration request message. Further, the RRC message may be a Direct Transfer message.
  • UE_A10 receives the RRC message including the default EPS bearer context activation request message. Further, when one or more pieces of identification information among the seventh to sixteenth pieces of identification information are included in the default EPS bearer context activation request message, UE_A 10 acquires each piece of identification information.
  • UE_A10 transmits the RRC message to eNB_A45 (S2412).
  • the RRC message may be an RRC connection reconfiguration completion message.
  • ENB_A45 receives the RRC connection reconfiguration message and transmits a bearer configuration message to C-SGN_A95 based on the reception (S2414).
  • UE_A10 and / or eNB_A45 may omit the procedures of (S2412) and (S2414) based on the third determination.
  • UE_A10 transmits an RRC message including a default EPS bearer context activation acceptance message to eNB_A45 based on reception of the default EPS bearer context activation request message (S2416).
  • the default EPS bearer context activation acceptance message may be a response message to the default EPS bearer context activation request message.
  • the RRC message to be transmitted including the default EPS bearer context activation acceptance message may be a Direct Transfer message.
  • UE_A10 transitions to the attach completion state based on reception of the default EPS bearer context activation request message and / or transmission of the default EPS bearer context activation acceptance message.
  • UE_A10 may recognize and determine a transition completion state of attachment based on information included in the default EPS bearer context activation request message and identification information of UE_A10.
  • UE_A10 is based on one or more pieces of identification information among the first to sixteenth pieces of identification information, whether the attach completion state to transition is the first mode, the third mode, or the fifth mode
  • the mode may be approved and determined.
  • the above-described approval / determination process will be described as a fourth determination (S2410).
  • the eleventh condition is assumed to be true.
  • the default EPS bearer context activation request message includes the eighth identification information and / or the tenth identification information, and / or the twelfth identification information and / or the thirteenth identification information.
  • the twelfth condition is assumed to be true when the method using the first transmission / reception procedure is indicated and / or the sixteenth identification information is identification information for identifying an SRB and / or a CRB.
  • the thirteenth condition is assumed to be true.
  • the default EPS bearer context activation request message includes the ninth identification information and / or the eleventh identification information, and / or the twelfth identification information and / or the thirteenth identification information.
  • the 14th condition is assumed to be true when the method using the second transmission / reception procedure is indicated and / or when the 16th identification information is identification information for identifying the DRB.
  • the 16th condition is true. .
  • UE_A10 determines whether the first condition is true and / or the twelfth condition is true and / or the eleventh condition is true and the twelfth condition is true. You may transition to mode.
  • UE_A10 is not limited to the above conditions, and may transition to the first mode.
  • UE_A10 determines if the thirteenth condition is true and / or if the fourteenth condition is true and / or if the thirteenth condition is true and the fourteenth condition is true You may transition to mode.
  • UE_A10 is not limited to the above conditions, and may transition to the third mode.
  • UE_A10 sets the fifth if the fifteenth condition is true and / or the sixteenth condition is true and / or the fifteenth condition is true and the sixteenth condition is true. You may transition to mode.
  • UE_A10 is not limited to the above conditions, and may transition to the fifth mode.
  • condition for transitioning to the attached completion state in each mode is not limited to the above.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may send and receive a default EPS bearer context activation request message and / or send and receive a default EPS bearer context activation acceptance message and / or a fourth decision. Based on this, a PDN connection may be established.
  • a default bearer may be established when establishing a PDN connection.
  • the RB configuring the default bearer may be a DRB.
  • the RB configuring the default bearer may be an SRB.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may establish a PDN connection and / or default bearer and / or SRB.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may establish a DRB.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may not establish the DRB.
  • UE_A10, and / or eNB_A45, and / or C-SGN_A95 may establish an SRB without establishing a DRB.
  • ENB_45 receives the RRC message including the default EPS bearer context activation acceptance message, and transmits the default EPS bearer context activation acceptance message to C-SGN_A95 (S2418).
  • UE_A10 may transition to the idle mode with the transmission of the default EPS bearer context activation acceptance message based on the fourth determination. More specifically, if the attach completion state to be transitioned is the third mode and / or the fifth mode, the UE_A 10 may transition to the idle mode with the transmission of the default EPS bearer context activation acceptance message. Good.
  • the RRC message is received from eNB_A45 as a response to the Direct Transfer message including the default EPS bearer context activation acceptance message, and UE_A10 transitions to the idle mode with the reception of the response message based on the fourth determination. Also good.
  • UE_A10 may transmit the default EPS bearer context activation acceptance message and / or the Direct Transfer message including identification information indicating transition to the idle mode.
  • eNB_A45 that has received the Direct Transfer message may transmit an RRC message as a response to UE_A10 based on the received identification information.
  • the RRC message as a response may be a message for permitting transition to the idle mode.
  • UE_A 10 can select whether to transition to the idle mode or maintain the active mode based on the fourth determination.
  • C-SGN_A95 receives the default EPS bearer context activation acceptance message.
  • C-SGN_A95 may transition the connection state for UE_A10 to the idle mode based on reception of the default EPS bearer context activation acceptance message.
  • C-SGN_A95 may manage the state of UE_A10 as the idle mode based on the transmission of the default EPS bearer context activation request message or the reception of the default EPS bearer context activation acceptance message.
  • C-SGN_A95 transmits a default EPS bearer context activation request message or default EPS bearer context active when the transition completion state of the transition is the third mode and / or the fifth mode.
  • the state of UE_A10 may be managed as the idle mode based on the reception of the activation acceptance message.
  • UE_A10 and / or eNB_A45 may identify the type of RB established as the default bearer based on the sixteenth identification information.
  • UE_A10 and / or eNB_A45 recognizes that SRB and / or CRB is established as a default bearer when the 16th identification information is identification information for identifying SRB and / or CRB. May be.
  • UE_A10 and / or eNB_A45 may recognize that DRB has been established as a default bearer when the 16th identification information is identification information for identifying DRB.
  • UE_A10 connects to the network and completes the first PDN connection procedure.
  • UE_A10 and / or C-SGN_A95 may change the mode of the attachment completion state.
  • the UE_A 10 can acquire and store the UE context described in FIG. 21 from the core network_A 90 by the PDN connection procedure.
  • the UE_A 10 acquires, from the core network_A90, the UE context for each PDN connection and / or the UE context for each bearer from the UE context described in FIG. be able to.
  • C-SGN_A95 can acquire and store the contexts A to E described in FIG. 19 from UE_A10, eNB_A45, or HSS_A50 by the PDN connection procedure.
  • the C-SGN_A95 sets the EPS bearer context for each PDN connection and / or the EPS bearer context for each bearer among the contexts A to E described in FIG. It can be acquired from eNB_A45 or HSS_A50 and stored.
  • the core network_A90 in the example of the PDN connection procedure described above has been described with reference to the PDN connection procedure in the case of the core network including the C-SGN_A95 described with reference to FIG. It may be configured to include PGW_A30, SGW_A35, MME_A40, etc. as described.
  • NAS messages such as PDN connection request message and default EPS bearer context activation acceptance message transmitted by UE_A10 described in this procedure are received by MME45, not C-SGN_A95.
  • the transmission / reception method change procedure is a procedure initiated by UE_A10 and / or core network_A90.
  • the transmission / reception method change procedure includes a procedure initiated by UE_A10 and a procedure initiated by C-SGN_A95.
  • the transmission / reception method change procedure is a procedure for changing the transmission / reception method used by UE_A10 and / or C-SGN_A95 for transmission / reception of user data.
  • the transmission / reception method change procedure is a procedure for changing the attachment completion state of UE_A10 and / or C-SGN_A95.
  • UE_A10 and / or C-SGN_A95 may start the transmission / reception method change procedure when the attach procedure and / or the PDN connection procedure is completed. Regardless of this, UE_A10 and / or C-SGN_A95 may start the transmission / reception method change procedure at an arbitrary timing as long as UE_A10 is connected to core network_A90.
  • the trigger for starting the transmission / reception method change procedure may be a UE operation or an operator policy.
  • the trigger for starting the UE_A10 initiated transmission / reception method change procedure may be based on the operation of the UE.
  • the trigger for starting the transmission / reception method change procedure led by the core network_A90 is not based on the reception of the bearer resource change request message transmitted by the UE_A 10, but may be based on the network policy of the operator.
  • UE_A10 and / or C-SGN_A95 can transmit / receive user data using a new transmission / reception method upon completion of the transmission / reception method change procedure. Therefore, UE_A10 and / or C-SGN_A95 may change the mode of the attachment completion state based on the completion of the transmission / reception method change procedure.
  • UE_A10 transmits a bearer resource change request message to C-SGN_A95 (S2500).
  • UE_A10 may transmit a bearer resource change request message to eNB_A45, and the transmitted bearer resource change request message may be transferred to C-SGN_A95 via eNB_A45.
  • UE_A10 may include at least one piece of identification information of the 17th to 22nd identification information in the bearer resource change request message.
  • UE_A10 changes the user data transmission / reception method and / or the user after the change by transmitting a bearer resource change request message including one or more pieces of identification information of the 17th to 22nd pieces of identification information
  • the type of data transmission / reception method may be requested.
  • C-SGN_A95 receives a bearer resource change request message. Furthermore, one or more pieces of identification information among the 17th to 22nd identification information are acquired based on reception of the bearer resource change request message.
  • C-SGN_A95 is based on the information included in the bearer resource change request message, the subscriber information, and the identification information held by C-SGN_A95.
  • the attach completion state to be performed may be determined.
  • C-SGN_A95 is based on one or more of the first to twenty-second identification information, whether the user data transmission / reception method after the change is a method using the first transmission / reception procedure, The method using the second transmission / reception procedure may be selected and determined.
  • C-SGN_A95 determines whether the attach completion state to be changed is the first mode or the third mode based on one or more pieces of identification information from the first to the twenty-second identification information. It may be selected and determined.
  • the selection / determination process described above will be described as a fifth determination (S2502).
  • the C-SGN_A95 holds the second identification information and / or the eighth identification information and / or the tenth identification information and / or the 21st in the bearer resource change request message.
  • / or the 18th identification information and / or the 22nd identification information indicates a method using the first transmission / reception procedure, and / or the 19th identification information is an SRB.
  • the twentieth identification information indicates the first mode, the user data transmission / reception method may be changed to a method using the first transmission / reception procedure, or a transition to the first mode is made. May be.
  • C-SGN_A95 holds the third identification information and / or the ninth identification information and / or the eleventh identification information, and / or the 21st in the bearer resource change request message.
  • / or the 18th identification information and / or the 22nd identification information indicates a method using the second transmission / reception procedure, and / or the 19th identification information is a DRB.
  • the twentieth identification information indicates the third mode, the user data transmission / reception method may be changed to a method using the second transmission / reception procedure, or the mode transitions to the third mode. May be.
  • the conditions for changing the transmission / reception method of each user data and / or the conditions for transitioning to the attachment completion state of each mode are not limited to the above.
  • C-SGN_A95 may identify the bearer that changes the user data transmission / reception method using the seventeenth identification information. Also, the bearer identification information newly established by the transmission / reception method change procedure may be the same as the seventeenth identification information.
  • C-SGN_A95 transmits an EPS bearer context change request message to eNB_A45 based on the reception of the bearer resource change request message and / or the fifth determination (S2504).
  • the EPS bearer context change request message may be a response message to the bearer resource change request message.
  • C-SGN_A95 may include at least one of the 26th to 33rd identification information in the EPS bearer context change request message.
  • the C-SGN_A95 changes and / or newly creates one or more pieces of identification information from the 26th to 33rd identification information based on the fifth determination, and generates an EPS bearer context change request message. May be included.
  • C-SGN_A95 is the new user data determined as the 27th identification information and / or the 32nd identification information and / or the 33rd identification information based on the fifth determination.
  • Information indicating the transmission / reception method may be inserted.
  • C-SGN_A95 may include information indicating the determined new RB type in the 28th identification information based on the fifth determination.
  • C-SGN_A95 includes information indicating the mode after the change of the attachment completion state in which C-SGN_A95 and / or UE_A10 transitions is determined in the 29th identification information based on the fifth determination. Also good.
  • C-SGN_A95 may change the transmission / reception method of user data based on the reception of the bearer resource change request message and / or the transmission of the EPS bearer context change request message and / or the fifth determination.
  • the mode of the attachment completion state may be changed.
  • the C-SGN_A95 specifies a method for transmitting / receiving user data based on reception of a bearer resource change request message and / or transmission of an EPS bearer context change request message and / or a fifth determination.
  • the method using the first transmission / reception procedure may be changed from the method using the second transmission / reception procedure to the method using the second transmission / reception procedure and / or the method using the second transmission / reception procedure, You may make a transition from the first mode to the third mode and / or from the third mode to the first mode.
  • ENB_A45 receives the EPS bearer context change request message and transmits an RRC message including the EPS bearer context change request message to UE_A10 (S2506).
  • the RRC message may be an RRC connection reconfiguration request message. Further, the RRC message may be a Direct Transfer message.
  • UE_A10 receives the RRC message including the EPS bearer context change request message. Furthermore, when one or more pieces of identification information among the 26th to 33rd identification information is included in the EPS bearer context change request message, UE_A10 acquires each piece of identification information.
  • UE_A10 may recognize and determine the user data transmission / reception method after the change and / or the attached attachment completion state based on the information included in the EPS bearer context change request message.
  • UE_A10 is based on one or more identification information of the 26th to 33rd identification information, whether the user data transmission / reception method after the change is a method using the first transmission / reception procedure, It may be recognized and determined whether the method uses the transmission / reception procedure. In other words, UE_A10 recognizes whether the attach completion state to be changed is the first mode or the third mode based on one or more pieces of identification information among the 26th to 33rd identification information, You may decide.
  • the above-described recognition and determination process will be described as a sixth determination (S2508).
  • the UE_A10 includes the 30th identification information in the EPS bearer context change request message and / or the 27th identification information and / or the 32nd identification information and / or the 33rd identification information. Indicates the method using the first transmission / reception procedure, and / or the 28th identification information indicates the SRB, and / or the 29th identification information indicates the first mode, and / or the 26th If the identification information is SRB and / or CRB identification information, the user data transmission / reception method after the change may be recognized as a method using the first transmission / reception procedure, or the transition destination It may be recognized that the attach completion state is the first mode.
  • UE_A10 includes the 30th identification information in the EPS bearer context change request message and / or the 27th identification information and / or the 32nd identification information and / or the 33rd identification information. Indicates the method using the second transmission / reception procedure, and / or the 28th identification information indicates the DRB, and / or the 29th identification information indicates the second mode, and / or the 26th If the identification information is the identification information for identifying the DRB, the user data transmission / reception method after the change may be recognized as a method using the second transmission / reception procedure, and the attachment completion state of the transition destination is the first You may recognize that it is mode 3.
  • the condition for recognizing the transmission / reception method of each user data after the change and / or the condition for recognizing the mode of the attachment completion state at the transition destination is not limited to the above.
  • UE_A10 transmits the RRC message to eNB_A45 (S2510).
  • the RRC message may be an RRC connection reconfiguration completion message.
  • ENB_A45 receives the RRC connection reconfiguration message and transmits a bearer configuration message to C-SGN_A95 based on the reception (S2512).
  • UE_A10 transmits an RRC message including an EPS bearer context change acceptance message to eNB_A45 based on the reception of the EPS bearer context change request message (S2514).
  • the EPS bearer context change acceptance message may be a response message to the EPS bearer context change request message.
  • the RRC message to be transmitted including the EPS bearer context change acceptance message may be a Direct Transfer message.
  • UE_A10 may change the transmission / reception method of user data based on reception of EPS bearer context change request message and / or transmission of EPS bearer context change acceptance message and / or sixth determination, You may change the mode of an attachment completion state.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may transmit / receive an EPS bearer context change request message and / or transmit an EPS bearer context change acceptance message and / or Based on the determination, the user data transmission / reception method is changed from the method using the first transmission / reception procedure to the method using the second transmission / reception procedure and / or the method using the second transmission / reception procedure to the first transmission / reception procedure. It is possible to change to a method using the above, or to change the mode of the attachment completion state from the first mode to the third mode and / or from the third mode to the first mode.
  • UE_A10 and / or eNB_A45 establishes a new DRB based on reception of an EPS bearer context change request message and / or transmission of an EPS bearer context change acceptance message and / or the sixth determination. May be.
  • UE_A10 and / or eNB_A45 is a method in which the user data transmission / reception method after the change uses the second transmission / reception procedure and / or the attachment completion state after the transition is the third mode DRB may be established.
  • UE_A10 and / or eNB_A45 may identify the type of RB established as the default bearer based on the 26th identification information.
  • UE_A10 and / or eNB_A45 recognizes that SRB and / or CRB is established as a default bearer when the 26th identification information is identification information that identifies SRB and / or CRB. May be.
  • UE_A10 and / or eNB_A45 may recognize that DRB is established as a default bearer when the 26th identification information is identification information for identifying DRB.
  • ENB_45 receives the RRC message including the EPS bearer context change acceptance message, and transmits the EPS bearer context change acceptance message to C-SGN_A95 (S2516).
  • C-SGN_A95 receives the EPS bearer context change acceptance message.
  • UE_A10 and / or C-SGN_A95 changes the transmission / reception method of user data and completes the first transmission / reception method change procedure.
  • UE_A10 and / or C-SGN_A95 may change the mode of the attachment completion state.
  • the UE_A 10 can newly acquire and store the UE context described in FIG. 21 from the core network_A 90 by the first transmission / reception method change procedure.
  • the UE_A 10 can newly acquire and store the UE context for each bearer from the core network_A 90 among the UE contexts described in FIG. 21 by the first transmission / reception method change procedure.
  • C-SGN_A95 can newly acquire and store each context of A to E described in FIG. 19 from UE_A10, eNB_A45, or HSS_A50 by the first transmission / reception method change procedure.
  • C-SGN_A95 newly acquires EPS bearer context for each bearer from UE_A10, eNB_A45, or HSS_A50 among the contexts A to E described in FIG. 19 by the first transmission / reception method change procedure. Can be remembered.
  • C-SGN_A95 transmits an EPS bearer context change request message to eNB_A45 (S2600).
  • C-SGN_A95 may include at least one of the 17th to 23rd identification information in the EPS bearer context change request message.
  • C-SGN_A95 changes the user data transmission / reception method and / or changes by sending an EPS bearer context change request message including one or more of the 17th to 23rd identification information You may request
  • ENB_A45 receives the EPS bearer context change request message and transmits an RRC message including the EPS bearer context change request message to UE_A10 (S2602).
  • the RRC message may be an RRC connection reconfiguration request message. Further, the RRC message may be a Direct Transfer message.
  • UE_A10 receives the RRC message including the EPS bearer context change request message. Furthermore, when one or more pieces of identification information among the 17th to 23rd pieces of identification information are included in the EPS bearer context change request message, UE_A10 acquires each piece of identification information.
  • UE_A10 may select and determine the changed user data transmission / reception method and / or the transition completion state of attachment based on the information included in the EPS bearer context change request message and the identification information of UE_A10 .
  • UE_A10 is based on one or more pieces of identification information from the first to the 23rd identification information, whether the user data transmission / reception method after the change is a method using the first transmission / reception procedure, or the second It may be selected and determined whether the method uses the transmission / reception procedure.
  • UE_A10 selects, based on one or more pieces of identification information from the first to the twenty-third identification information, whether the transition completion state of the transition is the first mode or the third mode, You may decide.
  • the selection and determination process described above will be described as a seventh determination (S2604).
  • UE_A10 holds the second identification information and / or the eighth identification information and / or the tenth identification information, and / or the 21st in the EPS bearer context change request message
  • the identification information is included and / or the 18th identification information and / or the 23rd identification information indicates the method using the first transmission / reception procedure, and / or the 19th identification information indicates the SRB.
  • the twentieth identification information indicates the first mode, the user data transmission / reception method may be changed to a method using the first transmission / reception procedure, or the transition to the first mode is made. May be.
  • UE_A10 holds the third identification information and / or the ninth identification information and / or the eleventh identification information, and / or the 21st message in the EPS bearer context change request message.
  • the identification information is included, and / or the 18th identification information and / or the 23rd identification information indicates a method using the second transmission / reception procedure, and / or the 19th identification information indicates the DRB.
  • the twentieth identification information indicates the third mode
  • the user data transmission / reception method may be changed to the method using the second transmission / reception procedure, or the mode transitions to the third mode. May be.
  • the conditions for changing the transmission / reception method of each user data and / or the conditions for transitioning to the attachment completion state of each mode are not limited to the above.
  • UE_A 10 may identify the bearer that changes the user data transmission / reception method using the seventeenth identification information. Also, the bearer identification information newly established by the transmission / reception method change procedure may be the same as the seventeenth identification information.
  • UE_A10 transmits the RRC message to eNB_A45 (S2606).
  • the RRC message may be an RRC connection reconfiguration completion message.
  • ENB_A45 receives the RRC connection reconfiguration message and transmits a bearer configuration message to C-SGN_A95 based on the reception (S2608).
  • UE_A 10 transmits an RRC message including an EPS bearer context change acceptance message to eNB_A 45 based on the reception of the EPS bearer context change request message and / or the seventh determination (S2610).
  • the EPS bearer context change acceptance message may be a response message to the EPS bearer context change request message.
  • the RRC message to be transmitted including the EPS bearer context change acceptance message may be a Direct Transfer message.
  • UE_A10 may include at least one of the 26th to 33rd identification information in the EPS bearer context change acceptance message.
  • UE_A10 changes and / or newly creates one or more pieces of identification information from the 26th to 33rd identification information, and includes them in the EPS bearer context change acceptance message. May be.
  • the UE_A 10 transmits and receives new user data determined as the 27th identification information and / or the 31st identification information and / or the 33rd identification information based on the seventh determination.
  • Information indicating the method may be included.
  • UE_A10 may insert information indicating the determined new RB type in the 28th identification information based on the seventh determination.
  • UE_A10 may include information indicating the mode after the change of the attachment completion state in which UE_A10 and / or C-SGN_A95 is transitioned, determined in the 29th identification information based on the seventh determination .
  • UE_A10 may change the transmission / reception method of user data based on the reception of the EPS bearer context change request message and / or the transmission of the EPS bearer context change acceptance message and / or the seventh determination, You may change the mode of an attachment completion state.
  • the UE_A 10 uses the first method for transmitting / receiving user data based on the reception of the EPS bearer context change request message and / or the transmission of the EPS bearer context change acceptance message and / or the seventh determination.
  • the method using the second transmission / reception procedure may be changed from the method using the second transmission / reception procedure and / or the method using the second transmission / reception procedure to the method using the first transmission / reception procedure. Transition from the first mode to the third mode and / or from the third mode to the first mode may be performed.
  • UE_A10 and / or eNB_A45 establishes a new DRB based on reception of an EPS bearer context change request message and / or transmission of an EPS bearer context change acceptance message and / or the seventh determination. May be.
  • UE_A10 and / or eNB_A45 is a method in which the user data transmission / reception method after the change uses the second transmission / reception procedure and / or the attachment completion state after the transition is in the third mode DRB may be established.
  • ENB_45 receives the RRC message including the EPS bearer context change acceptance message, and transmits the EPS bearer context change acceptance message to C-SGN_A95 (S2612).
  • C-SGN_A95 receives the EPS bearer context change acceptance message.
  • UE_A 10 acquires each identification information.
  • the C-SGN_A95 may recognize and determine the user data transmission / reception method after the change and / or the attached attachment completion state based on the information included in the EPS bearer context change acceptance message.
  • C-SGN_A95 is based on one or more identification information of the 26th to 33rd identification information, whether the user data transmission / reception method after the change is a method using the first transmission / reception procedure, Whether the method uses the second transmission / reception procedure may be recognized and determined.
  • C-SGN_A95 determines whether the attach completion state to be changed is the first mode or the third mode based on one or more of the 26th to 33rd identification information. You may recognize and decide.
  • the above-described recognition / determination process will be described as an eighth determination (S2614).
  • the C-SGN_A95 includes the 30th identification information in the EPS bearer context change acceptance message and / or the 27th identification information and / or the 31st identification information and / or the 33rd identification information.
  • the identification information indicates the method using the first transmission / reception procedure
  • / or the 28th identification information indicates the SRB
  • / or the 29th identification information indicates the first mode
  • the 26th identification information is identification information identifying SRB and / or CRB
  • the user data transmission / reception method after the change may be recognized as a method using the first transmission / reception procedure
  • the transition completion attach completion state may be recognized as the first mode.
  • the C-SGN_A95 includes the 30th identification information in the EPS bearer context change acceptance message and / or the 27th identification information and / or the 31st identification information and / or the 33rd identification information.
  • the identification information indicates a method using the second transmission / reception procedure
  • / or the 28th identification information indicates the DRB
  • / or the 29th identification information indicates the second mode
  • the 26th identification information is identification information for identifying the DRB
  • the user data transmission / reception method after the change may be recognized as a method using the second transmission / reception procedure, or the transition destination attach completion state May be recognized as the third mode.
  • the condition for recognizing the transmission / reception method of each user data after the change and / or the condition for recognizing the mode of the attachment completion state at the transition destination is not limited to the above.
  • C-SGN_A95 may change the transmission / reception method of user data or the mode of the attachment completion state based on the reception of the EPS bearer context change acceptance message and / or the eighth determination.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 first transmits / receives an EPS bearer context change acceptance message and / or user data transmission / reception method based on the eighth determination.
  • the method using the second transmission / reception procedure may be changed from the method using the second transmission / reception procedure and / or the method using the second transmission / reception procedure to the method using the first transmission / reception procedure.
  • the completed mode may be changed from the first mode to the third mode and / or from the third mode to the first mode.
  • UE_A10 and / or eNB_A45 may identify the type of RB established as the default bearer based on the 26th identification information.
  • UE_A10 and / or eNB_A45 recognizes that SRB and / or CRB is established as a default bearer when the 26th identification information is identification information that identifies SRB and / or CRB. May be.
  • UE_A10 and / or eNB_A45 may recognize that DRB is established as a default bearer when the 26th identification information is identification information for identifying DRB.
  • UE_A10 and / or C-SGN_A95 changes the user data transmission / reception method and completes the second transmission / reception method change procedure.
  • UE_A10 and / or C-SGN_A95 may change the mode of the attachment completion state.
  • the UE_A 10 can newly acquire and store the UE context described in FIG. 21 from the core network_A 90 by the second transmission / reception change procedure.
  • UE_A 10 can newly acquire and store the UE context for each bearer from the core network_A 90 among the UE contexts described in FIG. 21 by the second transmission / reception change procedure.
  • C-SGN_A95 can newly acquire and store the contexts A to E described in FIG. 19 from UE_A10, eNB_A45, or HSS_A50 by the second transmission / reception change procedure.
  • C-SGN_A95 newly acquires EPS bearer context for each bearer from UE_A10, eNB_A45, or HSS_A50 among the contexts A to E described in FIG. 19 by the second transmission / reception change procedure, Can be remembered.
  • C-SGN_A95 transmits an EPS bearer context deactivation request message to eNB_A45 (S2700).
  • C-SGN_A95 may include at least one of the 17th to 25th identification information in the EPS bearer context deactivation request message.
  • C-SGN_A95 changes the transmission / reception method of user data by transmitting an EPS bearer context deactivation request message including one or more identification information of the 17th to 25th identification information, and / or The type of user data transmission / reception method after the change may be requested.
  • the C-SGN_A95 sends a PDN connection and / or default by sending an EPS bearer context deactivation request message including one or more identification information of the 17th to 25th identification information.
  • the bearer re-establishment and / or the type of user data transmission / reception method after the re-establishment may be requested.
  • ENB_A45 receives the EPS bearer context deactivation request message and transmits an RRC message including the EPS bearer context deactivation request message to UE_A10 (S2702).
  • the RRC message may be an RRC connection reconfiguration request message. Further, the RRC message may be a Direct Transfer message.
  • UE_A10 receives the RRC message including the EPS bearer context deactivation request message. Further, when one or more pieces of identification information of the 17th to 25th identification information are included in the EPS bearer context deactivation request message, UE_A10 acquires each piece of identification information.
  • UE_A10 determines whether or not to re-establish a PDN connection and / or default bearer based on information included in the EPS bearer context deactivation request message and / or identification information held by UE_A10.
  • the user data transmission / reception method after the establishment and / or the attachment completion state to be changed may be selected and determined.
  • the UE_A 10 determines whether or not the PDN connection and / or the default bearer needs to be reestablished based on one or more pieces of identification information among the first to 25th identification information, and / or You may select and determine whether the user data transmission / reception method after re-establishment is a method using the first transmission / reception procedure or a method using the second transmission / reception procedure.
  • UE_A10 determines whether the attach completion state to be transitioned is the first mode and / or the second mode based on one or more pieces of identification information among the first to 25th identification information, You may select and determine whether the mode is the third mode and / or the fourth mode.
  • the selection and determination process described above will be described as a ninth determination (S2704).
  • the UE_A 10 holds the second identification information and / or the eighth identification information and / or the tenth identification information, and / or the first information in the EPS bearer context deactivation request message.
  • 21 identification information and / or 24th identification information and / or 25th identification information is included and / or 18th identification information and / or 23rd identification information is 1st And / or when the 19th identification information indicates SRB and / or the 20th identification information indicates the first mode, and / or the established PDN connection, and / or Alternatively, after disconnecting the default bearer, a PDN connection for transmitting / receiving user data and / or a default bearer may be established by a method using the first transmission / reception procedure.
  • UE_A10 disconnects the established PDN connection and / or default bearer and transitions to the second mode, then performs the PDN connection procedure and transitions to the first mode. May be.
  • the UE_A 10 holds the third identification information and / or the ninth identification information and / or the eleventh identification information, and / or the first information in the EPS bearer context deactivation request message.
  • 21 identification information and / or 24th identification information and / or 25th identification information is included and / or 18th identification information and / or 23rd identification information is 2nd And / or when the 19th identification information indicates DRB and / or the 20th identification information indicates the third mode, and / or the established PDN connection, and / or Alternatively, after disconnecting the default bearer, a PDN connection for transmitting / receiving user data and / or a default bearer may be established by a method using the second transmission / reception procedure.
  • UE_A10 disconnects the established PDN connection and / or default bearer and transitions to the fourth mode, then performs the PDN connection procedure and transitions to the third mode. May be.
  • the conditions for re-establishing the PDN connection and / or default bearer, and / or the conditions for changing the transmission / reception method of each user data, and / or the conditions for the transition to the attached completion state of each mode are as described above. Not limited to.
  • UE_A 10 may identify the bearer that changes the user data transmission / reception method using the seventeenth identification information. In other words, the UE_A 10 may identify the bearer to be disconnected and / or re-established using the seventeenth identification information.
  • the bearer identification information established by the new PDN connection procedure may be the same as the 17th identification information.
  • UE_A10 transmits the RRC message to eNB_A45 (S2706).
  • the RRC message may be an RRC connection reconfiguration completion message.
  • ENB_A45 receives the RRC connection reconfiguration message and transmits a bearer configuration message to C-SGN_A95 based on the reception (S2708).
  • UE_A10 transmits an RRC message including an EPS bearer context deactivation acceptance message to eNB_A45 based on the reception of the EPS bearer context deactivation request message and / or the ninth determination (S2710).
  • the EPS bearer context deactivation acceptance message may be a response message to the EPS bearer context deactivation request message.
  • the RRC message to be transmitted including the EPS bearer context deactivation acceptance message may be a Direct Transfer message.
  • UE_A10 may include at least the 26th identification information in the EPS bearer context deactivation acceptance message.
  • UE_A10 changes the mode of the attach completion state based on the reception of the EPS bearer context deactivation request message and / or the transmission of the EPS bearer context deactivation acceptance message and / or the ninth determination. Also good.
  • the UE_A 10 receives the EPS bearer context deactivation request message and / or transmits the EPS bearer context deactivation acceptance message and / or the first mode based on the ninth determination. To the third mode and / or from the third mode to the first mode.
  • ENB_45 receives the RRC message including the EPS bearer context deactivation acceptance message, and transmits the EPS bearer context deactivation acceptance message to C-SGN_A95 (S2712).
  • C-SGN_A95 receives the EPS bearer context deactivation acceptance message.
  • UE_A10 acquires the 26th identification information.
  • C-SGN_A95 may change the mode of the attachment completion state based on the reception of the EPS bearer context deactivation acceptance message and / or the ninth determination.
  • C-SGN_A95 receives EPS bearer context deactivation acceptance message and / or based on the ninth determination, the first mode to the fourth mode, and / or the third mode The mode may transit to the second mode.
  • UE_A10 may receive an EPS bearer context deactivation request message and / or send an EPS bearer context deactivation acceptance message and / or send a PDN connection request message to C-SGN_A95 based on the ninth decision. You may send it. UE_A10 may transmit a PDN connection request message to eNB_A45, and the transmitted PDN connection request message may be transferred to C-SGN_A95 via eNB_A45.
  • UE_A10 based on the ninth determination, by transmitting a PDN connection request message including one or more pieces of identification information of the first to fifth identification information, the type of PDN connection to be established, In addition, the mode of the attachment completion state to be transitioned and / or the type of user data transmission / reception method may be requested.
  • the UE_A 10 receives the EPS bearer context deactivation request message and / or transmits the EPS bearer context deactivation acceptance message and / or based on the ninth determination, and the PDN connection, and Alternatively, a PDN connection procedure for re-establishing a default bearer may be performed (S2714).
  • PDN connection procedure for re-establishing the PDN connection and / or default bearer may be the same as the procedure described in section 1.3.2, and detailed description thereof is omitted.
  • UE_A10 and / or C-SGN_A95 can transmit / receive user data based on transmission / reception of EPS bearer context deactivation acceptance message and / or completion of ninth determination and / or PDN connection procedure. It may be changed, or the mode of the attachment completion state may be changed.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may send and receive EPS bearer context deactivation acceptance messages and / or complete the ninth determination and / or PDN connection procedure.
  • the user data transmission / reception method is changed from the method using the first transmission / reception procedure to the method using the second transmission / reception procedure and / or the method using the second transmission / reception procedure.
  • the method may be changed to the method used, and the mode of the attachment completion state may be changed from the first mode and / or the second mode and / or the fourth mode to the third mode, and / or
  • the fourth mode and / or the third mode and / or the second mode may be changed to the first mode.
  • UE_A10 and / or eNB_A45 may identify the type of RB established as the default bearer based on the sixteenth identification information.
  • UE_A10 and / or eNB_A45 recognizes that SRB and / or CRB is established as a default bearer when the 16th identification information is identification information for identifying SRB and / or CRB. May be.
  • UE_A10 and / or eNB_A45 may recognize that DRB has been established as a default bearer when the 16th identification information is identification information for identifying DRB.
  • UE_A10 and / or C-SGN_A95 changes the transmission / reception method of user data and completes the third transmission / reception method change procedure.
  • UE_A10 and / or C-SGN_A95 may change the mode of the attachment completion state.
  • the UE_A 10 can newly acquire and store the UE context described in FIG. 21 from the core network_A 90 by the third transmission / reception method change procedure.
  • UE_A 10 can newly acquire and store the UE context for each bearer from the core network_A 90 among the UE contexts described in FIG. 21 by the third transmission / reception method change procedure.
  • C-SGN_A95 can newly acquire and store the contexts A to E described in FIG. 19 from UE_A10, eNB_A45, or HSS_A50 by the third transmission / reception method change procedure.
  • C-SGN_A95 newly acquires EPS bearer context for each bearer from UE_A10, eNB_A45, or HSS_A50 among the contexts A to E described in FIG. 19 by the third transmission / reception method change procedure. Can be remembered.
  • the core network_A90 in the example of the transmission / reception method change procedure described above has explained the transmission / reception method change procedure in the case of the core network having the configuration including the C-SGN_A95 described with reference to FIG. It may be configured to include PGW_A30, SGW_A35, MME_A40, etc. as described above.
  • NAS messages such as bearer resource change request message, EPS bearer context change acceptance message, and EPS bearer context deactivation acceptance message transmitted by UE_A10 described in this procedure are received by MME45 instead of C-SGN_A95.
  • NAS messages such as the EPS bearer context change request message and EPS bearer context deactivation request message of C-SGN_A95 described so far can be replaced with those performed by MME_A40.
  • UE_A10 transmits the first message to eNB_A45.
  • the first message is a message for requesting at least transmission timing information and resource allocation information, and UE_A10 transmits to eNB_A45 including a randomly selected preamble.
  • the first message is a control signal of the Physical layer, and may be a RACH (Randam-Access-Channel) -Preamble message of Message1.
  • the first message may be transmitted using PRACH (Phycisal Random Access Channel).
  • ENB_A45 receives the first message and transmits the second message to UE_A10 as a response to the first message.
  • the second message is transmitted including at least transmission timing information and resource allocation information. More specifically, the transmission timing information may be Timing Advance, and the resource allocation information may be UL Grant.
  • the second message is a MAC (Media Access Control) control signal, and may be transmitted using MAC RAR (Medium Access Control Random Access Response).
  • the second message may be a Message2 RACH Response message.
  • the communication procedure after the UE_A 10 receives the second message can be branched into a first transmission / reception procedure example, a second transmission / reception procedure example, and a third transmission / reception procedure example which will be described later.
  • the UE_A 10 may branch to the first transmission / reception procedure example and / or the second transmission / reception procedure example and / or the third transmission / reception procedure example based on the second and / or fourth determination. .
  • the first transmission / reception procedure example is a procedure in which UE_A 10 transmits and receives user data without establishing a DRB.
  • the first transmission / reception procedure example is a procedure for transmitting user data using a radio bearer for transmitting / receiving a control message.
  • the first transmission / reception procedure example is a procedure for UE_A 10 and C-SGN_A 95 to transmit / receive user data using an EPS bearer including an SRB.
  • the first transmission / reception procedure example is a procedure in which UE_A 10 transmits and receives user data using the SRB.
  • UE_A10 transmits the third message to eNB_A45 based on the reception of the second message from eNB_A45 (S2800).
  • ENB_A45 receives the third message transmitted by UE_A10.
  • the eNB_A45 transmits the fourth message to the UE_A10 based on the reception of the third message (S2802).
  • UE_A10 transmits the fourth message transmitted by eNB_A45.
  • the UE_A 10 transmits the fifth message to the eNB_A 45 based on the reception of the fourth message (S2804).
  • UE_A10 may transmit the NAS message including the UL user data included in the third message and / or the fifth message.
  • UE_A10 may encrypt and transmit UL user data or NAS messages including UL user data.
  • ENB_A45 receives the NAS message including the UL user data based on the reception of the third message and / or the fifth message.
  • ENB_A45 sends an S1AP (S1 Application Protocol) Initial UE message to C-SGN_A95 based on the reception of the NAS message including the UL user data (S2806).
  • S1AP S1 Application Protocol
  • ENB_A45 may transmit an S1AP Initial UE message including at least a NAS message including UL user data.
  • the eNB_A45 may transmit a completion message to the UE_A10 based on the reception of the third message and / or the fifth message and / or the transmission of the S1AP initial UE message (S2808).
  • UE_A10 receives the completion message transmitted by eNB_A45.
  • C-SGN_A95 receives the NAS message including the UL user data contained in the S1AP Initial UE message and / or the S1AP Initial UE message transmitted by eNB_A45.
  • C-SGN_A95 is based on the reception of the NAS message that contains the UL user data included in the S1AP Initial UE message. (S2810). Note that C-SGN_A95 may decrypt the extracted user data if necessary.
  • C-SGN_A95 transmits user data to PDN_A5 based on extraction and / or decryption of user data included in the NAS message (S2812).
  • the C-SGN_A95 may be transmitted to the PDN_A5 after decoding the user data.
  • UE_A10 can transmit a small data packet, which is UL user data, to PDN_A5 without establishing a DRB. Furthermore, after the first transmission / reception procedure example is completed, the UE_A 10 can transition to the idle state or maintain the idle state.
  • UE_A10 and / or C-SGN_A95 does not transmit / receive user data in the first transmission / reception procedure, but may transmit user data using the second transmission / reception procedure. Good.
  • the second transmission / reception procedure example is a procedure in which UE_A 10 transmits / receives user data after establishing DRB.
  • the second transmission / reception procedure example is a procedure for UE_A 10 and C-SGN_A 95 to transmit / receive user data using an EPS bearer including DRB.
  • the second transmission / reception procedure example is a procedure in which UE_A 10 transmits and receives user data using DRB.
  • UE_A10 transmits the third message to eNB_A45 based on the reception of the second message from eNB_A45 (S2900).
  • UE_A10 may transmit at least the NAS message and / or the resume ID included in the third message.
  • the NAS message may be a message for re-establishing the DRB.
  • the resume ID may be identification information for identifying the DRB to be reestablished.
  • / or resume ID may be the identification information which identifies the context which eNB_A45 hold
  • / or resume ID may be the identification information which instruct
  • / or resume ID may be the identification information which instruct
  • eNB_A45 may transition from the active state to the idle state by transmitting a resume ID to UE_A10.
  • UE_A10 may change from an active state to an idle state by receiving a resume ID from eNB_A45.
  • UE_A10 may transition from the idle state to the active state by transmitting the received resume ID to eNB_A45. Further, the eNB_A45 may transition from the idle state to the active state by receiving the resume ID from the UE_A10.
  • resume ID that is sent and received for transition from the active state to the idle state and the resume ID that is sent and received for the transition from the idle state to the active state are the same resume ID.
  • the used context can be identified, and UE_A10 and eNB_A45 can return to the communication state similar to the previous active state, such as re-establishing DRB based on the identified context.
  • UE_A10 and eNB_A45 can transition between the active state and the idle state based on the resume ID.
  • ENB_A45 receives the third message transmitted by UE_A10.
  • the eNB_A45 receives the NAS message and / or the resume ID based on the reception of the third message.
  • ENB_A45 re-establishes the DRB identified by the resume ID based on the receipt of the resume ID included in the third message.
  • ENB_A45 transmits the fourth message to UE_A10 based on the reception of the third message and / or the re-establishment of the DRB identified by the resume ID (S2902).
  • ENB_A45 may include at least the resume ID for identifying the re-established DRB in the fourth message and transmit it.
  • eNB_A45 sets the status of eNB_A45 to active mode based on the reception of the third message and / or the reception of the NAS message and / or the re-establishment of the DRB identified by the resume ID and / or the transmission of the fourth message. Transition to.
  • eNB_A45 receives third message and / or NAS message, and / or re-establishes DRB identified by resume ID, and / or sends fourth message, and / or active in status of eNB_A45 Based on the transition to the mode, a UE context activation message of S1AP (S1 Application Protocol) is transmitted to C-SGN_A95 (S2904).
  • the eNB_A45 may transmit the S1AP UE context activation message including the NAS message.
  • C-SGN_A95 receives the UE context activation message of S1AP.
  • C-SGN_A95 transitions the state of C-SGN_A95 to the active mode based on the reception of the UE context activation message of S1AP.
  • the C-SGN_A95 receives the UE context activation response of the S1AP to the eNB_A45 based on the reception of the UE context activation message of the S1AP and / or the reception of the NAS message and / or the transition to the active mode of the state of the C-SGN_A95.
  • a message is transmitted (S2906).
  • UE_A10 receives the fourth message transmitted by eNB_A45.
  • UE_A10 transitions the state of UE_A10 to the active mode based on reception of the fourth message and / or reception of a resume ID for identifying the re-established DRB included in the fourth message.
  • UE_A10 receives eNB_A45 based on reception of the fourth message and / or reception of a resume ID for identifying a re-established DRB included in the fourth message and / or transition of UE_A10 state to active mode And / or UL user data is transmitted to PDN_A5 via C-SGN_A95 (S2908) (S2910) (S2912).
  • UE_A10 continues to transmit UL user data to PDN_A5 via eNB_A45 and / or C-SGN_A95 as long as UL user data to be transmitted exists. Note that the presence / absence of data to be transmitted may be determined from the remaining amount of data in a buffer that stores UL user data to be transmitted.
  • UE_A10 can transmit UL user data. Furthermore, UE_A10 can also receive DL (DownLink) user data by the above procedure. DL user data is transmitted from PDN_A5 and can be received via C-SGN_A95 and eNB_A45.
  • DL DownLink
  • ENB_A45 transfers UL user data received from UE_A10 to C-SGN_A95.
  • eNB_A45 When eNB_A45 detects that the reception of UL user data is not for a certain period of time, as shown in (A) of FIG. 5, UE_A10 and / or eNB_A45, and / or C-SGN_A95 to transition to the idle mode Start the procedure. In other words, as long as eNB_A45 continues to receive UL user data, the procedure as shown in (A) of FIG. 5 is not performed.
  • ENB_A45 transmits an S1AP UE context invalidation message to C-SGN_A95 based on the detection that UL user data has not been received for a certain time (S2914).
  • C-SGN_A95 receives the S1AP UE context invalidation message.
  • C-SGN_A95 changes the state of C-SGN_A95 to the idle mode based on the reception of the UE context invalidation message of S1AP.
  • the C-SGN_A95 transmits a UE context invalidation response message of the S1AP to the eNB_A45 based on the reception of the UE context invalidation message of the S1AP and / or the transition to the idle mode in the state of the C-SGN_A95 (S2916).
  • ENB_A45 transmits a RRC Connection Suspend message to UE_A10 based on the transmission of the UE context invalidation message and / or the reception of the UE context invalidation response (S2918).
  • ENB_A45 may transmit at least the resume ID included in the RRC Connection Suspend message.
  • the resume ID may be identification information for identifying the DRB to be disconnected. More specifically, the resume ID may be identification information that identifies the context held by UE_A10 and / or eNB_A45 corresponding to the DRB to be disconnected.
  • ENB_A45 disconnects the DRB identified by the resume ID based on the transmission of the RRC Connection Suspend message with the resume ID. Note that the eNB_A45 performs the cutting of the DRB identified by the resume ID, but may keep the context corresponding to the DRB to be cut without deleting it.
  • ENB_A45 changes the state of eNB_A45 to the idle mode based on the disconnection of the DRB identified by the resume ID.
  • UE_A10 receives the RRC Connection Suspend message sent by eNB_A45.
  • UE_A10 disconnects the DRB identified by the resume ID based on the reception of the RRC Connection Suspend message and / or the reception of the resume ID included in the RRC Connection Suspend message. Note that UE_A10 performs the disconnection of the DRB identified by the resume ID, but may continue to hold the context corresponding to the DRB to be disconnected without deleting it.
  • UE_A10 changes the state of UE_A10 to the idle mode based on the disconnection of the DRB identified by the resume ID.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 can transition to the idle mode by disconnecting DRB while maintaining the context of UE_A10 and / or eNB_A45.
  • the third transmission / reception procedure example is a conventional transmission / reception procedure.
  • the third transmission / reception procedure example is a procedure in which UE_A 10 transmits / receives user data after establishing DRB.
  • the third transmission / reception procedure may be the same procedure as the second transmission / reception procedure. Therefore, the detailed description here is omitted.
  • UE_A 10 may transmit the fifth message including the NAS message and not including the NAS message and / or the resume ID in the third message.
  • the S1AP message transmitted / received between eNB_A45 and C-SGN_A95 is not limited to the UE context activation message and / or the UE context activation response message, but may be any message that transmits / receives a NAS message.
  • UE_A10 may transmit UL user data based on reception of a response message to the fifth message.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 does not use the context used in the previous active state, but creates a new context to create the DRB. It may be established or it may transit to an active state.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 may send and receive a UE context invalidation message and / or an RRC connection invalidation message without including the resume ID.
  • UE_A10 and / or eNB_A45 and / or C-SGN_A95 does not include a resume ID, and transmits and receives a UE context invalidation message and / or an RRC connection invalidation message. You may change to idle mode.
  • the core network_A90 in the UL user data transmission / reception procedure described above has been described with reference to the attach procedure in the case of the core network having the configuration including C-SGN_A95 described with reference to FIG. It may be configured to include PGW_A30, SGW_A35, MME_A40, etc. as described above.
  • the NAS message transmitted by UE_A10 described in this procedure is received by MME45, not C-SGN_A95.
  • the program that operates in the apparatus related to the present invention may be a program that controls the central processing unit (CPU) and the like to function the computer so as to realize the functions of the embodiments related to the present invention.
  • the program or information handled by the program is temporarily stored in a volatile memory such as a random access memory (RAM) or a non-volatile memory such as a flash memory, a hard disk drive (HDD), or another storage system.
  • RAM random access memory
  • HDD hard disk drive
  • a program for realizing the functions of the embodiments according to the present invention may be recorded on a computer-readable recording medium.
  • the “computer system” here is a computer system built in the apparatus, and includes hardware such as an operating system and peripheral devices.
  • the “computer-readable recording medium” refers to a semiconductor recording medium, an optical recording medium, a magnetic recording medium, a medium that dynamically holds a program for a short time, or other recording medium that can be read by a computer. Also good.
  • each functional block or various features of the apparatus used in the above-described embodiments can be implemented or executed by an electric circuit, for example, an integrated circuit or a plurality of integrated circuits.
  • Electrical circuits designed to perform the functions described herein can be general purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs), or other Programmable logic devices, discrete gate or transistor logic, discrete hardware components, or a combination thereof.
  • a general purpose processor may be a microprocessor or a conventional processor, controller, microcontroller, or state machine.
  • the electric circuit described above may be configured by a digital circuit or an analog circuit. Further, in the case where an integrated circuit technology that replaces the current integrated circuit appears due to the progress of semiconductor technology, the present invention can also use a new integrated circuit based on the technology.
  • the present invention is not limited to the above-described embodiment.
  • an example of an apparatus has been described.
  • the present invention is not limited to this, and a stationary or non-movable electronic device installed indoors or outdoors, such as an AV device, a kitchen device, It can be applied to terminal devices or communication devices such as cleaning / washing equipment, air-conditioning equipment, office equipment, vending machines, and other daily life equipment.

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Databases & Information Systems (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

La présente invention concerne une procédure de communication pour la transmission et la réception de données convenant à des terminaux CIoT. Dans un procédé de commande de communication pour ce dispositif terminal, un premier procédé de transmission/réception de données utilisant une porteuse de données radio (DRB) pour transmettre et recevoir des données d'utilisateur, et un second procédé de transmission/réception de données utilisant une porteuse radio de signalisation (SRB) pour transmettre et recevoir les données d'utilisateur. Le procédé de commande de communication comprend : une étape dans laquelle le procédé de transmission/réception de données utilisateur est modifié du premier procédé de transmission/réception de données au second procédé de transmission/réception de données ; et une étape dans laquelle le second procédé de transmission/réception de données est utilisé pour transmettre et recevoir les données d'utilisateur vers et en provenance d'un réseau central.
PCT/JP2017/001569 2016-01-19 2017-01-18 Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme WO2017126559A1 (fr)

Priority Applications (5)

Application Number Priority Date Filing Date Title
US16/070,766 US10567995B2 (en) 2016-01-19 2017-01-18 Terminal apparatus, MME, communication method of terminal apparatus, and communication method of MME
CN202110593791.3A CN113225835B (zh) 2016-01-19 2017-01-18 Ue、控制装置以及ue的通信方法
CN201780004272.0A CN108432334B (zh) 2016-01-19 2017-01-18 终端装置、mme、终端装置的通信方法以及mme的通信方法
EP17741436.4A EP3407669B1 (fr) 2016-01-19 2017-01-18 Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme
US16/746,228 US10993144B2 (en) 2016-01-19 2020-01-17 Terminal apparatus, MME, communication method of terminal apparatus, and communication method of MME

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2016007689A JP2019050437A (ja) 2016-01-19 2016-01-19 端末装置、c−sgnおよび通信制御方法
JP2016-007689 2016-01-19

Related Child Applications (2)

Application Number Title Priority Date Filing Date
US16/070,766 A-371-Of-International US10567995B2 (en) 2016-01-19 2017-01-18 Terminal apparatus, MME, communication method of terminal apparatus, and communication method of MME
US16/746,228 Continuation US10993144B2 (en) 2016-01-19 2020-01-17 Terminal apparatus, MME, communication method of terminal apparatus, and communication method of MME

Publications (1)

Publication Number Publication Date
WO2017126559A1 true WO2017126559A1 (fr) 2017-07-27

Family

ID=59362243

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/JP2017/001569 WO2017126559A1 (fr) 2016-01-19 2017-01-18 Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme

Country Status (5)

Country Link
US (2) US10567995B2 (fr)
EP (1) EP3407669B1 (fr)
JP (1) JP2019050437A (fr)
CN (2) CN108432334B (fr)
WO (1) WO2017126559A1 (fr)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019139089A1 (fr) * 2018-01-12 2019-07-18 シャープ株式会社 Dispositif utilisateur

Families Citing this family (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10506389B2 (en) * 2016-02-04 2019-12-10 Nec Corporation Radio terminal, radio station, and method therefor
JP2019515527A (ja) * 2016-04-01 2019-06-06 日本電気株式会社 制御プレーンCIoT EPS最適化による負荷制御
CN109196889B (zh) * 2016-05-30 2020-08-14 华为技术有限公司 用户信息获取方法、标识对应关系保存方法及装置与设备
CN108616931B (zh) * 2017-02-04 2023-06-09 中兴通讯股份有限公司 一种用户设备最大带宽的控制方法及装置
US10812532B2 (en) 2017-06-15 2020-10-20 Palo Alto Networks, Inc. Security for cellular internet of things in mobile networks
US10834136B2 (en) 2017-06-15 2020-11-10 Palo Alto Networks, Inc. Access point name and application identity based security enforcement in service provider networks
US10693918B2 (en) 2017-06-15 2020-06-23 Palo Alto Networks, Inc. Radio access technology based security in service provider networks
US10708306B2 (en) 2017-06-15 2020-07-07 Palo Alto Networks, Inc. Mobile user identity and/or SIM-based IoT identity and application identity based security enforcement in service provider networks
US10721272B2 (en) 2017-06-15 2020-07-21 Palo Alto Networks, Inc. Mobile equipment identity and/or IOT equipment identity and application identity based security enforcement in service provider networks
US11050789B2 (en) 2017-06-15 2021-06-29 Palo Alto Networks, Inc. Location based security in service provider networks
WO2020042040A1 (fr) * 2018-08-29 2020-03-05 华为技术有限公司 Procédé et dispositif de transmission précoce de données de liaison descendante
CN108990096B (zh) * 2018-09-03 2021-07-06 四川酷比通信设备有限公司 移动终端的nas消息处理方法、系统及移动终端
CN109246799A (zh) * 2018-09-05 2019-01-18 江苏鑫软图无线技术股份有限公司 NB-IoT系统下实现CIoT EPS优化转换的方法
US11134374B2 (en) * 2020-02-18 2021-09-28 T-Mobile Usa, Inc. Static IP handling per access point name

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2011044804A (ja) * 2009-08-19 2011-03-03 Panasonic Corp 無線通信装置および無線通信方法
JP2013529402A (ja) * 2010-03-23 2013-07-18 インターデイジタル パテント ホールディングス インコーポレイテッド マシンタイプ通信のための効率的なシグナリング
JP2015510371A (ja) * 2012-02-29 2015-04-02 アルカテル−ルーセント 非アクセス層(nas)信号を使用するネットワークでのマシン・タイプ通信(mtc)

Family Cites Families (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101741768A (zh) * 2008-11-14 2010-06-16 大唐移动通信设备有限公司 一种pco信息的处理方法、系统及装置
CN101938843A (zh) * 2009-07-01 2011-01-05 大唐移动通信设备有限公司 一种业务承载方式的选择方法和装置
US8831014B2 (en) * 2009-09-26 2014-09-09 Cisco Technology, Inc. Providing services at a communication network edge
US10667321B2 (en) * 2015-02-09 2020-05-26 Intel IP Corporation Evolved Node-B, user equipment, and methods for transition between idle and connected modes
GB2541009B (en) * 2015-08-05 2019-03-06 Samsung Electronics Co Ltd Power saving for cellular internet of things devices
JP6208296B1 (ja) * 2015-11-05 2017-10-04 株式会社Nttドコモ ユーザ装置、基地局、及び接続確立方法
WO2017082682A1 (fr) * 2015-11-11 2017-05-18 엘지전자(주) Procédé pour sélectionner un nœud de transmission de données dans un système de communication sans fil et appareil associé
US10750559B2 (en) * 2016-01-07 2020-08-18 Lg Electronics Inc. User device and data transmission method therefor, and network node and data transmission method therefor
WO2017119802A1 (fr) * 2016-01-07 2017-07-13 엘지전자(주) Procédé pour régler la configuration d'une distribution de données non ip (nidd) dans un système de communication sans fil et dispositif associé
EP3400751A4 (fr) * 2016-01-08 2019-10-02 Nokia Technologies Oy Optimisation de plan d'utilisateur pour l'internet des objets à bande étroite
US10826867B2 (en) * 2016-01-08 2020-11-03 Telefonaktiebolaget Lm Ericsson (Publ) Simplified wireless connectivity for a cellular communications system
CN106961456B (zh) * 2016-01-11 2022-01-18 北京三星通信技术研究有限公司 决定iot业务方法和设备、iot业务行为控制方法和设备
WO2017123417A1 (fr) * 2016-01-12 2017-07-20 Intel Corporation Optimisations de l'internet des objets cellulaires (ciot) pour réseaux iot à bande étroite (nb) et non nb

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2011044804A (ja) * 2009-08-19 2011-03-03 Panasonic Corp 無線通信装置および無線通信方法
JP2013529402A (ja) * 2010-03-23 2013-07-18 インターデイジタル パテント ホールディングス インコーポレイテッド マシンタイプ通信のための効率的なシグナリング
JP2015510371A (ja) * 2012-02-29 2015-04-02 アルカテル−ルーセント 非アクセス層(nas)信号を使用するネットワークでのマシン・タイプ通信(mtc)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019139089A1 (fr) * 2018-01-12 2019-07-18 シャープ株式会社 Dispositif utilisateur
US11284320B2 (en) 2018-01-12 2022-03-22 Sharp Kabushiki Kaisha User equipment

Also Published As

Publication number Publication date
CN113225835B (zh) 2024-01-30
CN108432334A (zh) 2018-08-21
EP3407669B1 (fr) 2021-03-03
EP3407669A1 (fr) 2018-11-28
EP3407669A4 (fr) 2019-10-16
US10567995B2 (en) 2020-02-18
JP2019050437A (ja) 2019-03-28
US10993144B2 (en) 2021-04-27
CN108432334B (zh) 2022-05-10
US20200154312A1 (en) 2020-05-14
CN113225835A (zh) 2021-08-06
US20190028926A1 (en) 2019-01-24

Similar Documents

Publication Publication Date Title
WO2017126559A1 (fr) Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme
CN108464055B (zh) 终端装置、mme、终端装置的通信方法以及mme的通信方法
JP7097696B2 (ja) 端末装置、コアネットワーク内装置、端末装置の通信制御方法及びコアネットワーク内装置の通信制御方法
WO2017126556A1 (fr) Dispositif terminal, mme, procédé de communication pour dispositif terminal et procédé de communication mme
WO2017141993A1 (fr) Dispositif terminal, entité de gestion de la mobilité (mme) et procédé de commande de communication
WO2017082344A1 (fr) Ue, mme, procédé de commande de communication d'ue, et procédé de commande de communication de mme
WO2017082343A1 (fr) Ue, mme, procédé de commande de communication d'ue, et procédé de commande de communication de mme
WO2017082342A1 (fr) Dispositif de terminal, mme, et procédé de communication
WO2017026465A1 (fr) Dispositif terminal, dispositif station de base, procédé de commande d'une communication de dispositif terminal et procédé de commande d'une communication de dispositif station de base
CN108605270B (zh) 用户设备、核心网装置以及通信方法
JP7216762B2 (ja) Ue、ueにより行われる通信制御方法、コアネットワーク装置及びコアネットワーク装置により行われる通信制御方法

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17741436

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: 2017741436

Country of ref document: EP

ENP Entry into the national phase

Ref document number: 2017741436

Country of ref document: EP

Effective date: 20180820

NENP Non-entry into the national phase

Ref country code: JP